TECHNICAL FIELD
[0001] The present disclosure relates to a pharmaceutical composition and use thereof, and
in particular to a pharmaceutical composition for treating a disease associated with
hepatitis B virus infection and use thereof.
BACKGROUND
[0002] Viral hepatitis B (also known as hepatitis B) caused by infection with HBV virus
is a type of infectious disease that poses a serious threat to the world, particularly
China. Chronic HBV infection (CHB) can also lead to an increased probability of chronic
hepatitis, cirrhosis, liver failure, and hepatocellular carcinoma (HCC).
[0003] At present, the two main drugs for treating hepatitis B are interferons and nucleoside
analogs, but the two types of drugs have the problems of susceptibility to drug resistance
after use, susceptibility to adverse reactions after use of interferons, susceptibility
to drug resistance after use of nucleoside drugs, and relapse after discontinuation
of medication.
[0004] In recent years, emerging small nucleic acid drugs have also shown high activity
and persistence in inhibiting hepatitis B virus.
[0005] However, in the prior art, there are still no drugs and treatment methods for functionally
curing hepatitis B disclosed.
SUMMARY
[0006] The inventors of the present disclosure have found that a composition comprising
an RNAi agent and an immune response regulator surprisingly shows superior therapeutic
efficacy when used to clear HBsAg in a subject and/or to treat HBV infection. Therefore,
the inventors made the following inventions.
[0007] In one aspect, the present disclosure provides a pharmaceutical composition comprising
a pharmaceutically active component, wherein the pharmaceutically active component
consists of an RNAi agent and an immune response regulator, and the RNAi agent and
the immune response regulator exist independently; the RNAi agent refers to one or
more of an siRNA composition, an siRNA conjugate, and a pharmaceutically acceptable
salt thereof, the siRNA composition comprises an siRNA and a pharmaceutically acceptable
carrier; the siRNA conjugate comprises an siRNA group and a conjugating group conjugatively
linked to the siRNA group; the siRNA group refers to a group formed by removing one
or more atoms or groups from the siRNA, and the siRNA is an siRNA capable of inhibiting
HBV mRNA; based on siRNA, the weight ratio of the RNAi agent to the immune response
regulator is (0.5-5000):1.
[0008] In another aspect, the present disclosure provides use of the pharmaceutical composition
described herein in preparing a medicament for treating a disease associated with
hepatitis B virus infection.
[0009] In yet another aspect, the present disclosure provides a method for treating a disease
associated with hepatitis B virus infection, comprising administering to a subject
an effective amount of the pharmaceutical composition described herein.
[0010] In yet another aspect, the present disclosure further provides a kit comprising the
pharmaceutical composition described herein.
Incorporation by Reference
[0011] All publications, patents, and patent applications mentioned in this specification
are incorporated herein by reference to the same extent as if each individual publication,
patent, or patent application was specifically and individually indicated to be incorporated
herein by reference.
Beneficial effects
[0012] Compared with administration of an RNAi agent or an immune response regulator alone,
the pharmaceutical composition and the treatment method of the present disclosure
exhibit an excellent anti-hepatitis B virus effect, have the potential to achieve
a functional cure of hepatitis B virus, and exhibit significant synergistic utility
and significantly better therapeutic effects. A higher reduction rate of HBsAg, HBeAg
and HBV DNA content in serum can be achieved while administering a lower dose of drugs
to a subject, and the production of anti-HBV antibodies in the subject can be promoted.
[0013] For example, compared to use of an siRNA conjugate or an immune response regulator
alone, use of the pharmaceutical composition of the present disclosure was able to
further reduce the HBV DNA level within the experimental period of up to 78 days,
and the maximum HBV DNA inhibition rate reached 99.9992%. Moreover, the reduction
in the HBV DNA was surprisingly greatly beyond the sum of the inhibition effects of
an siRNA conjugate or an immune response regulator alone. Compared to use of the RNAi
agent alone, the HBV DNA level could be further greatly reduced by 99.9% on the basis
that the HBV DNA level had been greatly reduced in the RNAi agent alone group. Further
results showed that in 6 experimental animals administered with the pharmaceutical
composition of the present disclosure, the HBV DNA level of 1 experimental animal
was reduced to the limit of detection (10
3.18 IU/mL) or less on day 78. For another example, the present disclosure further verifies
the inhibition effect on HBV DNA after administration of a lower dose of the pharmaceutical
composition of the RNAi agent and the immune response regulator to mice. The results
showed that HBV DNA was maintained at a relatively low level for up to 85 days after
the first administration, with a maximum reduction of 4.48 log
10 IU/mL, i.e., the maximum HBV DNA inhibition rate reached 99.9967%. In addition, compared
with the inhibition level when the RNAi agent was administered at a single dose of
9 mpk, the HBV DNA level in the mice administered with the pharmaceutical composition
of the RNAi agent at a single dose of 3 mpk and the immune response regulator was
further greatly reduced, with a maximum reduction of 2.76 log
10 IU/mL, i.e., the HBV DNA level was further reduced by 99.83%.
[0014] For another example, compared to use of an siRNA conjugate or an immune response
regulator alone, use of the pharmaceutical composition of the present disclosure could
further perform a reduction within the experimental period of up to 78 days, and the
maximum HbsAg inhibition rate reached 99.9930%. Moreover, the reduction was surprisingly
greatly beyond the sum of the inhibition effects of an siRNA conjugate or an immune
response regulator alone, and could further reduce by 97.76% on the basis of the already
greatly reduced HbsAg level in the conjugate group compared to use of the RNAi agent
alone. Still further, on day 78, the HbsAg levels in some of the experimental animals
in the test groups administered with the composition of the present disclosure were
already below the limit of detection, indicating very excellent inhibition effects.
For another example, the present disclosure further verifies the inhibition effect
on HbsAg after administration of a lower dose of the pharmaceutical composition of
the RNAi agent and the immune response regulator to mice. The results showed that
HbsAg was maintained at a relatively low level for up to 85 days after the first administration,
with a maximum reduction of 3.32 log
10 IU/mL, i.e., the maximum HbsAg inhibition rate reached 99.9521%. In addition, compared
with the inhibition level when the RNAi agent was administered at a single dose of
9 mpk, the HbsAg level in the mice administered with the pharmaceutical composition
of the RNAi agent at a single dose of 3 mpk and the immune response regulator was
further greatly reduced, with a maximum reduction of 1.31 log
10 IU/mL, i.e., the HbsAg level was further reduced by 95.1022%.
[0015] For another example, compared to use of an siRNA conjugate or an immune response
regulator alone, use of the pharmaceutical composition of the present disclosure could
further reduce the HBeAg level within the experimental period of up to 78 days, and
the reduction was beyond the inhibition effect of the siRNA conjugate or the immune
response regulator used alone. The pharmaceutical composition of the present disclosure
showed a further reduction of about 0.3 log
10 IU/mL compared with the RNAi agent used alone. For another example, the present disclosure
further verifies that after a lower dose of the pharmaceutical composition of the
RNAi agent and the immune response regulator was administered to mice, the HbeAg level
in the mice also showed a further reduction of about 0.325 log
10 IU/mL than that of the RNAi agent drug administered alone at a relatively high dose.
[0016] For another example, the pharmaceutical composition of the present disclosure can
induce the production of significant HBsAb in serum in mice, indicating that the pharmaceutical
composition can not only effectively inhibit HBV antigens and DNA, but also stimulate
the immune response in mice, showing excellent prospects for achieving a functional
cure of hepatitis B.
BRIEF DESCRIPTION OF THE DRAWINGS
[0017]
FIG. 1 shows a line graph showing changes in the level of HBV DNA in the serum of
HBV transgenic mice over time after in vivo administration of a control group or the
pharmaceutical composition of the present disclosure.
FIG. 2 shows a line graph showing changes in the level of HbsAg in the serum of HBV
transgenic mice over time after in vivo administration of a control group or the pharmaceutical
composition of the present disclosure.
FIG. 3 shows a line graph showing changes in the level of HbeAg in the serum of HBV
transgenic mice over time after in vivo administration of a control group or the pharmaceutical
composition of the present disclosure.
FIG. 4 shows a line graph showing changes in the level of HBV DNA in the serum of
HBV transgenic mice over time after in vivo administration of a control group or the
pharmaceutical composition of the present disclosure.
FIG. 5 shows a line graph showing changes in the level of HbsAg in the serum of HBV
transgenic mice over time after in vivo administration of a control group or the pharmaceutical
composition of the present disclosure.
FIG. 6 shows a line graph showing changes in the level of HbeAg in the serum of HBV
transgenic mice over time after in vivo administration of a control group or the pharmaceutical
composition of the present disclosure.
DETAILED DESCRIPTION
[0018] Specific embodiments of the present disclosure are described in detail below. It
will be appreciated that the specific embodiments described herein are intended to
illustrate and explain the present disclosure only rather than limit the present disclosure.
Definitions
[0019] Unless otherwise specified, the nouns or terms used in the present disclosure have
the meanings described below.
[0020] HBV DNA refers to a DNA sequence having a sequence shown in Genbank accession No.
NC_003977.1. Further, unless otherwise specified, the "HBV mRNA" as used herein refers
to the mRNA transcribed from the HBV DNA described above. The complete coding sequence
of the reference sequence of the HBV genome can be found in, for example, GenBank
Accession Nos. GI:21326584 and GI:3582357. It is well known to those skilled in the
art that, based on the comparison of whole-gene nucleotide sequences, HBV can be divided
into 9 subtypes: A, B, C, D, E, F, G, H and I. These 9 HBV subtypes are all within
the scope of the HBV DNA described herein.
[0021] The uppercase letters C, G, U, and A represent the base composition of nucleotides;
the lowercase letter m indicates that the nucleotide adjacent to the letter m on the
left side is a methoxy modified nucleotide; the lowercase letter f indicates that
the nucleotide adjacent to the letter f on the left side is a fluoro modified nucleotide;
the lowercase letter s indicates that the two nucleotides adjacent to the letter s
on the left and right sides are linked by a phosphorothioate group; P1 indicates that
the nucleotide adjacent to the P1 on the right side is a 5'-phosphate nucleotide or
5'-phosphate analog modified nucleotide. In some embodiments, P1 is VP, Ps or P that
indicates a specific modification, wherein the letter combination VP indicates that
the nucleotide adjacent to the letter combination VP on the right side is a 5'-(E)-vinylphosphonate
(E-VP) modified nucleotide, the letter combination Ps indicates that the nucleotide
adjacent to the letter combination Ps on the right side is a phosphorothioate modified
nucleotide, and the uppercase letter P indicates that the nucleotide adjacent to the
letter P on the right side is a 5'-phosphate nucleotide.
[0022] "Fluoro modified nucleotide" refers to a nucleotide formed by substituting a 2'-hydroxy
of a ribose group of the nucleotide with a fluoro, and "non-fluoro modified nucleotide"
refers to a nucleotide formed by substituting the 2'-hydroxy of the ribose group of
the nucleotide with a non-fluoro group, or a nucleotide analogue. "Nucleotide analog"
refers to a group that can replace a nucleotide in a nucleic acid but has a structure
different from adenine ribonucleotide, guanine ribonucleotide, cytosine ribonucleotide,
uracil ribonucleotide, or thymine deoxyribonucleotide, e.g., an isonucleotide, a bridged
nucleic acid (BNA for short) or an acyclic nucleotide. "Methoxy modified nucleotide"
refers to a nucleotide formed by substituting the 2'-hydroxy of the ribose group with
a methoxy group.
[0023] "Complementary" and "reversely complementary" are used interchangeably and have the
meaning well known to those skilled in the art, that is, in a double-stranded nucleic
acid molecule, the bases of one strand are paired with the bases of the other strand
in a complementary manner. In DNA, the purine base adenine (A) is always paired with
the pyrimidine base thymine (T) (or uracil (U) in RNA), and the purine base guanine
(G) is always paired with the pyrimidine base cytosine (C). Each base pair comprises
a purine and a pyrimidine. When adenines of one strand are always paired with thymines
(or uracils) of another strand and guanines are always paired with cytosines, the
two strands are considered complementary to each other, and the sequences of the strands
can be deduced from the sequences of their complementary strands. Accordingly, "mispairing"
in the art means that in a double-stranded nucleic acid, the bases in the corresponding
positions are not paired in a complementary manner.
[0024] "Substantially reversely complementary" means that there are no more than 3 base
mispairings between two nucleotide sequences. "Substantially reverse complementary"
means that there is no more than 1 base mispairing between two nucleotide sequences.
"completely reverse complementary" means that there is no base mispairing between
two nucleotide sequences.
[0025] "Nucleotide difference" between one nucleotide sequence and another nucleotide sequence
means that the former has a change in the base type of the nucleotide at the same
position as compared to the latter. For example, when one nucleotide base in the latter
is A and the corresponding nucleotide base at the same position in the former is U,
C, G, or T, it is considered that a nucleotide difference exists at that position
between the two nucleotide sequences. In some embodiments, the replacement of a nucleotide
at its original position with an abasic nucleotide or an equivalent thereof can also
be considered that there is a nucleotide difference at that position.
[0026] In the context of the present disclosure, particularly when describing the preparation
method for siRNA or siRNA conjugate in the pharmaceutical composition and/or RNAi
agent of the present disclosure, unless otherwise specified, the nucleoside monomer
refers to a modified or unmodified RNA/nucleoside phosphoramidites used in phosphoramidite
solid-phase synthesis according to the type and sequence of nucleotides in the siRNA
or siRNA conjugate to be prepared. The phosphoramidite solid phase synthesis is a
method used in RNA synthesis well known to those skilled in the art. Unless otherwise
specified, the nucleoside monomers used in the present disclosure are all commercially
available or can be prepared by methods well known to those skilled in the art.
[0027] "Conjugation" refers to two or more chemical moieties each with specific function
being linked to each other via a covalent linkage. Accordingly, a "conjugate" refers
to a compound formed by covalent linkage of individual chemical moieties. Further,
an "siRNA conjugate" refers to a compound formed by covalently linking one or more
chemical moieties with specific functions to an siRNA. The siRNA conjugate should
be understood as a general term of multiple siRNA conjugates or an siRNA conjugate
represented by a certain chemical formula according to the context. In the context
of the present disclosure, a "conjugating molecule" should be understood as a specific
compound that may be conjugated to an siRNA through a reaction, ultimately forming
a so-called siRNA conjugate. The "siRNA conjugate" as used in the present disclosure
comprises an siRNA group and a conjugating group moiety, wherein the siRNA group refers
to a chemical moiety formed from an siRNA molecule after one or more atoms are removed.
It will be understood by those skilled in the art that the removal of the one or more
atoms described above does not destroy the inhibition activity or stability of the
siRNA against the target mRNA. For example, the siRNA group may be a chemical moiety
formed in the siRNA after the hydrogen atom in the phosphoester bond is removed, or
a chemical moiety formed in the siRNA after the hydrogen atom in the 5' hydroxy of
the 5' terminal nucleotide of the sense strand or antisense strand is removed, or
a chemical moiety formed in the siRNA after the hydrogen atom in the 3' hydroxy of
the 3' terminal nucleotide of the sense strand or antisense strand is removed.
[0028] Those skilled in the art will appreciate that for any group containing one or more
substituents, these groups are not intended to introduce any substitution group or
substitution pattern that is sterically impractical, synthetically infeasible, and/or
inherently unstable.
[0029] "Alkyl" refers to linear and branched chains having a specified number of carbon
atoms, typically 1 to 20 carbon atoms, such as 1 to 10 carbon atoms, for example,
1 to 8 or 1 to 6 carbon atoms. For example, C
1-C
6 alkyl includes linear and branched chain alkyl groups of 1 to 6 carbon atoms. When
reference is made to an alkyl residue having a specific number of carbons, all branched
and linear forms having that number of carbons are intended to be encompassed. Therefore,
for example, "butyl" is meant to include n-butyl, sec-butyl, isobutyl and t-butyl;
and "propyl" includes n-propyl and isopropyl. Alkylene is a subset of alkyl and refers
to residues which are identical to alkyl but have two attachment positions.
[0030] "Alkenyl" refers to an unsaturated branched or linear hydrocarbon group having at
least one carbon-carbon double bond obtained by removing a molecule of hydrogen from
adjacent carbon atoms of the parent alkyl group. The group may be in the cis or trans
configuration of the double bond. Typical alkenyl groups include, but are not limited
to: vinyl; propenyl, such as prop-1-en-1-yl, prop-1-en-2-yl, prop-2-en-1-yl (allyl),
and prop-2-en-2-yl; and butenyl, such as but-1-en-1-yl, but-1-en-2-yl, 2-methylprop-1-en-1-yl,
but-2-en-1-yl, but-2-en-2-yl, buta-1,3-dien-1-yl, buta-1,3-dien-2-yl, and the like.
In certain embodiments, alkenyl groups have 2 to 20 carbon atoms, while in other embodiments,
alkenyl groups have 2 to 10, 2 to 8, or 2 to 6 carbon atoms. Alkenylene is a subset
of alkenyl and refers to residues which are identical to alkenyl but have two attachment
positions.
[0031] "Alkynyl" refers to an unsaturated branched or linear hydrocarbon group having at
least one carbon-carbon triple bond obtained by removing two molecules of hydrogen
from adjacent carbon atoms of the parent alkyl group. Typical alkynyl groups include,
but are not limited to: ethynyl; propynyl, such as prop-1-yn-1-yl and prop-2-yn-1-yl;
and butynyl, such as but-1-yn-1-yl, but-1-yn-3-yl, but-3-yn-1-yl, and the like. In
certain embodiments, alkynyl groups have 2 to 20 carbon atoms, while in other embodiments,
alkynyl groups have 2 to 10, 2 to 8, or 2 to 6 carbon atoms. Alkynylene is a subset
of alkynyl and refers to residues which are identical to alkynyl but have two attachment
positions.
[0032] "Alkoxy" refers to an alkyl group of a specified number of carbon atoms linked by
an oxygen bridge, for example, methoxy, ethoxy, propoxy, isopropoxy, n-butoxy, sec-butoxy,
tert-butoxy, pentyloxy, 2-pentyloxy, isopentyloxy, neopentyloxy, hexyloxy, 2-hexyloxy,
3-hexyloxy, 3-methylpentyloxy, and the like. An alkoxy group typically has 1 to 10,
1 to 8, 1 to 6, or 1 to 4 carbon atoms linked by an oxygen bridge.
[0033] "Aryl" refers to a group derived from an aromatic monocyclic or polycyclic hydrocarbon
ring system by removing a hydrogen atom from a ring carbon atom. The aromatic monocyclic
or polycyclic hydrocarbon ring system contains only hydrogen and carbons of 6 to 18
carbon atoms, wherein at least one ring in the ring system is fully unsaturated, i.e.,
a cyclic delocalized (4n+2)π-electron system according to the Hückel theory is included.
Aryl groups include, but are not limited to, groups such as phenyl, fluorenyl, naphthyl,
and the like. Arylene is a subset of aryl and refers to residues which are identical
to aryl but have two attachment positions.
[0034] "Heteroaryl" refers to a group derived from a 3- to 18-membered aromatic ring and
contains 2 to 17 carbon atoms and 1 to 6 heteroatoms selected from nitrogen, oxygen
and sulfur. As used herein, a heteroaryl group may be a monocyclic, bicyclic, tricyclic
or tetracyclic ring system, wherein at least one ring in the ring system is fully
unsaturated, i.e., a cyclic delocalized (4n+2) π-electron system according to the
Hückel theory is included. Heteroaryl groups include fused or bridged ring systems.
In some embodiments, the heteroatoms in the heteroaryl group are oxidized heteroatoms.
In some embodiments, one or more nitrogen atoms are included in the heteroaryl group.
In some embodiments, one or more of the nitrogen atoms in the heteroaryl group are
quaternized nitrogen atoms. A heteroaryl group is attached to the rest of the molecule
via any ring atom. Examples of heteroaryl groups include, but are not limited to:
azepinyl, acridinyl, benzimidazolyl, benzindolyl, 1,3-benzobisoxazolyl, benzofuranyl,
benzooxazolyl, benzo[d]thiazolyl, benzothiadiazolyl, benzo[
b][1,4]dioxepinyl, benzo[b][1,4]oxazinyl, 1,4-benzodioxanyl, benzonaphthofuranyl, benzooxazolyl,
benzodioxolyl, benzodioxinyl, benzopyranyl, benzopyranonyl, benzofuranyl, benzofuranonyl,
benzothienyl, benzothieno[3,2-d]pyrimidinyl, benzotriazolyl, benzo[4,6]imidazo[1,2-a]pyridinyl,
carbazolyl, cinnolinyl, cyclopenta[d]pyrimidinyl, 6,7-dihydro-5H-cyclopenta[4,5]thieno[2,3-d]pyrimidinyl,
5,6-dihydrobenzo[h]quinazolinyl, 5,6-dihydrobenzo[h]cinnolinyl, 6,7-dihydro-5H-benzo[6,7]cyclohepta[1,2-c]pyridazinyl,
dibenzofuranyl, dibenzothienyl, furanyl, furanonyl, furo[3,2-c]pyridinyl, 5,6,7,8,9,10-hexahydrocycloocta[d]pyrimidinyl,
5,6,7,8,9,10-hexahydrocycloocta[d]pyridazinyl, 5,6,7,8,9,10-hexahydrocycloocta[d]pyridinyl,
isothiazolyl, imidazolyl, indazolyl, indolyl, isoindolyl, indolinyl, isoindolinyl,
isoquinolyl, indolizinyl, isoxazolyl, 5,8-methano-5,6,7,8-tetrahydroquinazolinyl,
naphthyridinyl, 1,6-naphthyridinonyl, oxadiazolyl, 2-oxoazepinyl, oxazolyl, oxiranyl,
5,6,6a,7,8,9,10,10a-octahydrobenzo[H]quinazolinyl, 1-phenyl-1
H-pyrrolyl, phenazinyl, phenothiazinyl, phenoxazinyl, phthalazinyl, pteridinyl, purinyl,
pyrrolyl, pyrazolyl, pyrazolo[3,4-d]pyrimidinyl, pyridinyl, pyrido[3,2-d]pyrimidinyl,
pyrido[3,4-d]pyrimidinyl, pyrazinyl, pyrimidinyl, pyridazinyl, pyrrolyl, quinazolinyl,
quinoxalinyl, quinolinyl, tetrahydroquinolinyl, 5,6,7,8-tetrahydroquinazolinyl, 5,6,7,8-tetrahydrobenzo[4,5]thieno[2,3-d]pyrimidinyl,
6,7,8,9-tetrahydro-5H-cyclohepta[4,5]thieno[2,3-d]pyrimidinyl, 5,6,7,8-tetrahydropyrido[4,5-c]pyridazinyl,
thiazolyl, thiadiazolyl, triazolyl, tetrazolyl, triazinyl, thieno[2,3-d]pyrimidinyl,
thieno[3,2-d]pyrimidinyl, thieno[2,3-c]pyridinyl and thiophenyl/thienyl.
[0035] A variety of hydroxy protecting groups may be used in the present disclosure. In
general, protecting groups render a chemical functionality insensitive to specific
reaction conditions and may be added and removed at that functionality in a molecule
without substantially damaging the rest of the molecule. Representative hydroxy protecting
groups are disclosed in
Beaucage et al., Tetrahedron 1992, 48, 2223-2311, and
Greene and Wuts, Protective Groups in Organic Synthesis, Chapter 2, 2nd ed, John
Wiley & Sons, New York, 1991, each of which is hereby incorporated by reference in its entirety. In some embodiments,
the protecting groups are stable under basic conditions and can be removed under acidic
conditions. In some embodiments, non-exclusive examples of hydroxy protecting groups
used herein include dimethoxytrityl (DMT), monomethoxytrityl, 9-phenyloxanthene-9-yl
(Pixyl) and 9-(p-methoxyphenyl)xanth-9-yl (Mox). In some embodiments, non-exclusive
examples of hydroxy protecting groups used herein include Tr (trityl), MMTr (4-methoxytrityl),
DMTr (4,4'-dimethoxytrityl) and TMTr (4,4',4''-trimethoxytrityl).
[0036] The term "subject", as used herein, refers to any animal, such as a mammal or a marsupial.
Subjects of the present disclosure include, but are not limited to, humans, non-human
primates (e.g., rhesus or other types of macaques), mice, pigs, horses, donkeys, cows,
rabbits, sheep, rats, and any species of poultry.
[0037] "Treatment" refers to means of obtaining a beneficial or desired result, including
but not limited to therapeutic benefit. The term "therapeutic benefit" means eradicating
or ameliorating the underlying disorder being treated. Furthermore, therapeutic benefit
is obtained by eradicating or ameliorating one or more physiological symptoms associated
with the underlying disorder, whereby improvement is observed in the subject, although
the subject may still be afflicted by the underlying disorder.
[0038] "Hepatitis B surface antigen (HBsAg)" refers to a surface antigen main protein of
hepatitis B virus (HBV), the meaning of which is well known to those skilled in the
art, e.g., the protein with NCBI GENBANK data accession No. AAF24729.1. As used herein,
"hepatitis B core antigen protein (HBcAg)" refers to the core antigen protein of HBV,
the meaning of which is well known to those skilled in the art, e.g., the protein
with NCBI GENBANK data accession No. AAO63517.1. As used herein. "Hepatitis B e antigen
(HBeAg)" refers to the hepatitis B virus protein located between the envelope and
the capsid of HBV, the meaning of which is well known to those skilled in the art,
e.g., the protein with NCBI GENBANK data accession No. BAJ51621.1. It will be understood
by those skilled in the art that in the amino acid sequences of the viral proteins
described above, mutations or variations, including but not limited to, substitutions,
deletions, and/or additions, such as HBsAg, HBcAg, and/or HBeAg of different genotypes
or subtypes, may naturally occur or can be artificially introduced, and these mutations
or variations do not affect biological functions thereof. All such natural or artificial
variants are also included within the scope of the present disclosure.
Pharmaceutical composition
[0039] In one aspect, the present disclosure provides a pharmaceutical composition comprising
a pharmaceutically active component, wherein the pharmaceutically active component
consists of an RNAi agent and an immune response regulator, and the RNAi agent and
the immune response regulator exist independently; the RNAi agent refers to one or
more of an siRNA composition, an siRNA conjugate, and a pharmaceutically acceptable
salt thereof; the siRNA composition comprises an siRNA and a pharmaceutically acceptable
carrier; the siRNA conjugate comprises an siRNA group and a conjugating group conjugatively
linked to the siRNA group; the siRNA group refers to a group formed by removing one
or more atoms or groups from the siRNA, and the siRNA is an siRNA capable of inhibiting
HBV mRNA; based on siRNA, the weight ratio of the RNAi agent to the immune response
regulator is (0.5-5000):1.
[0040] In the context of the present disclosure, the term "based on siRNA in the RNAi agent"
in the siRNA composition refers to based on the siRNA contained in the composition.
In the siRNA conjugate, based on the siRNA group, since the molecular weight of the
siRNA group contained in the siRNA conjugate is substantially the same as that of
the siRNA forming the siRNA group, the dose of the siRNA group in the siRNA conjugate
is also described as "based on siRNA" for convenience.
[0041] In the pharmaceutical composition of the present disclosure, the pharmaceutically
active component consists of the RNAi agent and the immune response regulator. The
inventors of the present disclosure have surprisingly found that unlike the prior
art, by containing an RNAi agent and an immune response regulator in a specific weight
ratio, the pharmaceutical composition of the present disclosure can achieve an enhanced
HBV inhibition effect without further use in combination with an HBV vaccine, and
shows an excellent synergistic effect on HbsAg and HBV DNA inhibition. Thus, in some
embodiments, in the pharmaceutical composition of the present disclosure, based on
siRNA in the RNAi agent, the weight ratio of the RNAi agent to the immune response
regulator is (0.5-2000):1 or (1-2000):1. In some embodiments, based on siRNA in the
RNAi agent, the weight ratio of the RNAi agent to the immune response regulator is
(1-400):1 or (2-400):1. In some embodiments, based on siRNA in the RNAi agent, the
weight ratio of the RNAi agent to the immune response regulator is (2-150):1 or (3-150):1.
In some embodiments, based on siRNA in the RNAi agent, the weight ratio of the RNAi
agent to the immune response regulator is (2.4-50):1 or (4-50):1. The pharmaceutical
composition of the present disclosure having the weight ratio described above is capable
of better exerting the synergistic effect of the RNAi agent and the immune response
regulator and producing a higher inhibition effect on HBV-related diseases or symptoms.
[0042] In some embodiments, the amount ratio of the RNAi agent to the immune response regulator
in the pharmaceutical composition is calculated according to the dose. The amount
of the RNAi agent in the pharmaceutical composition is calculated according to mg/kg
body weight of the subject, and the amount of the immune response regulator is calculated
according to the weight. In some embodiments, based on siRNA in the RNAi agent, the
dose ratio of the RNAi agent to the immune response regulator is (0.02-540) mg/kg
body weight of the subject:1 mg. In some embodiments, based on siRNA in the RNAi agent,
the dose ratio of the RNAi agent to the immune response regulator is (0.03-400) mg/kg
body weight of the subject:1 mg. In some embodiments, based on siRNA in the RNAi agent,
the dose ratio of the RNAi agent to the immune response regulator is (0.06-380) mg/kg
body weight of the subject:1 mg. In some embodiments, based on siRNA in the RNAi agent,
the dose ratio of the RNAi agent to the immune response regulator is (0.03-180) mg/kg
body weight of the subject:1 mg. In some embodiments, based on siRNA in the RNAi agent,
the dose ratio of the RNAi agent to the immune response regulator is (0.06-180) mg/kg
body weight of the subject:1 mg. In some embodiments, based on siRNA in the RNAi agent,
the dose ratio of the RNAi agent to the immune response regulator is (0.1-80) mg/kg
body weight of the subject:1 mg. In some embodiments, based on siRNA in the RNAi agent,
the dose ratio of the RNAi agent to the immune response regulator is (0.2-30) mg/kg
body weight of the subject:1 mg. Based on the doses of the RNAi agent and the immune
response regulator for verifying the efficacy in animal models in the present disclosure,
those skilled in the art can speculate about a dose range suitable for use in human
subjects.
[0043] In some embodiments, the siRNA composition comprises an siRNA and a pharmaceutically
acceptable carrier, wherein the siRNA is an siRNA in an siRNA conjugate.
[0044] In some embodiments, the siRNA conjugate in the pharmaceutical composition of the
present disclosure comprises an siRNA group and a conjugating group conjugatively
linked to the siRNA group.
[0045] In the pharmaceutical composition of the present disclosure, the "siRNA group" contained
in the siRNA conjugate refers to a group formed after one or more atoms or groups
are removed from the siRNA molecule to form a covalent linkage to the conjugating
group. In some embodiments, the siRNA group is a group formed by removing 1 atom or
1 group from one or more nucleotide residues in the siRNA molecule. In some embodiments,
the siRNA group is a group formed by removing 1 atom or 1 group from one or more nucleotide
residues in the ribose ring, the base, or the phosphate group in the siRNA molecule.
In some embodiments, the siRNA group is a group formed by removing 1 hydrogen atom
or 1 hydroxy from the 3' and/or 5' terminal hydroxy in the sense strand or the antisense
strand of the siRNA molecule. In some embodiments, the siRNA group is a group formed
by removing 1 hydrogen atom from the 3' or 5' terminal hydroxy in the sense strand
in the siRNA molecule. In some embodiments, the siRNA group is a group formed by removing
1 hydrogen atom in the 3' terminal hydroxy and/or the 5' terminal hydroxy in the sense
strand in the siRNA molecule.
[0046] In some embodiments, the RNAi agent refers to an siRNA conjugate or a pharmaceutically
acceptable salt thereof, wherein the conjugating group comprises a pharmaceutically
acceptable targeting group and a linker; the siRNA group, the linker and the targeting
group are linked sequentially, and each of the targeting groups is selected from ligands
capable of binding to a hepatocyte surface receptor.
[0047] Generally, the conjugating group comprises at least one pharmaceutically acceptable
targeting group and optionally a linker, and the siRNA group, the linker and the targeting
group are linked sequentially. In some embodiments, the number of the targeting group
is 1-6. In some embodiments, the number of the targeting group is 2-4. The siRNA group
may be non-covalently or covalently conjugated to the conjugating group. For example,
the same may be covalently conjugated to the conjugating group. The conjugating site
between the siRNA group and the conjugating group may be at the 3' terminal or 5'
terminal of the sense strand, or at the 5' terminal of the antisense strand in the
siRNA group, or within the sequence of the siRNA group. In this context, "within the
sequence" refers to nucleotides or internucleotide linkage groups other than the 3'
and 5' terminal nucleotides of the sense and antisense strands of the siRNA. In some
embodiments, the conjugating site between the siRNA group and the conjugating group
is at the 3' terminal of the sense strand.
[0048] In some embodiments, the conjugating group may be linked to the phosphate group,
the 2'-position hydroxy or the base of the siRNA group. In some embodiments, the conjugating
group may be linked to the 3'-position hydroxy, and at this time, the nucleotides
are linked by a 2'-5' phosphodiester bond. When the conjugating group is linked to
the end of the siRNA group, the conjugating group is usually linked to the phosphate
group or the 2'-position or 5'-position hydroxy of the nucleotide. When the conjugating
group is linked to the internal sequence of the siRNA group, the conjugating group
is usually linked to the ribose sugar ring or the base. For various linkage methods,
please refer to
Muthiah Manoharan et.al. siRNA conjugates carrying sequentially assembled trivalent
N-acetylgalactosamine linked through nucleotides elicit robust gene silencing in vivo
in hepatocytes. ACS Chemical biology, 2015, 10(5):1181-7.
[0049] In some embodiments, the siRNA group and the conjugating group may be linked by acid-labile
or reducible chemical bonds. In the acidic environment of a cell endosome, these chemical
bonds may degrade, thereby leaving the siRNA group in a free state. For example, the
siRNA group may be reformed into the siRNA molecule to fully exert the RNA interference
effect. For non-degradable conjugation methods, the conjugating group may be linked
to the sense strand of the siRNA group to reduce the influence of conjugation on the
inhibition activity of the siRNA group as much as possible.
[0050] The targeting group may be linked to the siRNA group through a suitable linker, and
those skilled in the art may select a suitable linker according to the specific type
of the targeting group. The types of these linkers, targeting groups and the linkage
methods with the siRNA group, for example, may be found in the disclosure of
WO2015006740A2, the entire contents of which are incorporated herein by reference.
[0051] In some embodiments, the targeting group may be a ligand conventionally used in the
field of siRNA administration, e.g., various ligands described in
WO2009082607A2, the entire disclosure of which is incorporated herein by reference.
[0052] In some embodiments, at least one or each of the targeting groups is selected from
ligands capable of binding to receptors on the surfaces of cells expressing the target
gene.
[0053] In some embodiments, at least one or each of the targeting groups is selected from
ligands capable of binding to receptors on the surfaces of mammalian hepatocytes.
In some embodiments, each of the targeting groups is independently a ligand that has
an affinity for an asialoglycoprotein receptor (ASGPR) on the surface of mammalian
hepatocytes. In some embodiments, each of the targeting groups is independently an
asialoglycoprotein or a sugar. In some embodiments, each of the targeting groups is
independently selected from one of D-mannopyranose, L-mannopyranose, D-arabinose,
D-xylofuranose, L-xylofuranose, D-glucose, L-glucose, D-galactose, L-galactose, α-D-mannofuranose,
β-D-mannofuranose, α-D-mannopyranose, β-D-mannopyranose, α-D-glucopyranose, β-D-glucopyranose,
α-D-glucofuranose, β-D-glucofuranose, α-D-fructofuranose, α-D-fructopyranose, α-D-galactopyranose,
β-D-galactopyranose, α-D-galactofuranose, β-D-galactofuranose, glucosamine, sialic
acid, galactosamine, N-acetylgalactosamine, N-trifluoroacetylgalactosamine, N-propionylgalactosamine,
N-n-butyrylgalactosamine, N-isobutyrylgalactosamine, 2-amino-3-O-[(R)-1-carboxyethyl]-2-deoxy-β-D-glucopyranose,
2-deoxy-2-methylamino-L-glucopyranose, 4,6-dideoxy-4-carboxamido-2,3-di-O-methyl-D-mannopyranose,
2-deoxy-2-sulfoamino-D-glucopyranose, N-glycoloyl-α-neuraminic acid, 5-thio-β-D-glucopyranose,
2,3,4-tri-O-acetyl-1-thio-6-O-trityl-α-D-glucopyranoside methyl ester, 4-thio-β-D-galactopyranose,
3,4,6,7-tetra-O-acetyl-2-deoxy-1,5-dithio-α-D-glucopyranoside ethyl ester, 2,5-anhydro-D-allose
nitrile, ribose, D-ribose, D-4-thioribose, L-ribose, and L-4-thioribose. In some embodiments,
at least one or each of the targeting groups is galactose or N-acetylgalactosamine.
[0054] In some embodiments, the linker in the siRNA conjugate has a structure as represented
by formula (301):
wherein k is an integer of 1-3;
LA has a structure containing an amide bond represented by formula (302), LB has a structure containing N-acylpyrrolidine represented by formula (303), containing
carbonyl and oxygen atoms, and LC is a linking group based on hydroxymethylaminomethane, dimethylolaminomethane or
trishydroxymethylaminomethane;


wherein n302, q302 and p302 are each independently an integer of 2-6, and optionally, n302, q302 and p302 are each independently 2 or 3; and n303 is an integer of 4-16, and optionally, n303 is an integer of 8-12.

indicates the point at which the group is covalently linked.
[0055] In the linker, each L
A is separately linked to one of the targeting groups via an ether bond, and is linked
to the L
C moiety by forming an ether bond via the oxygen atom of the hydroxy in the L
C moiety; L
B is linked by an amide bond formed by the carbonyl in formula (303) and the nitrogen
atom of the amino in the L
C moiety, and linked via a phosphate bond or a phosphorothioate bond formed by the
oxygen atom in formula (303) and the oxygen atom of the siRNA group.
[0056] In some embodiments, the RNAi agent refers to a conjugate having a structure represented
by formula (305) or a pharmaceutically acceptable salt thereof:

wherein Nu represents the siRNA group.
[0057] In some embodiments, the linker in the siRNA conjugate has a structure represented
by formula (306):

wherein n
306 is an integer of 0-3, each p
306 is independently an integer of 1-6, and

represents the site where the group is covalently linked; the linking group forms
an ether bond linkage to the targeting group through the oxygen atom marked by *.
The linking group forms a phosphoester bond or a phosphorothioate ester bond linkage
through at least one of the oxygen atoms marked by # with the siRNA group, and the
rest are linked to a hydrogen atom through the oxygen atom marked by # to form a hydroxy,
or linked to a C
1-C
3 alkyl group to form a C
1-C
3 alkoxy group.
[0058] In some embodiments, the siRNA conjugate has a structure represented by formula (307):

wherein Nu represents the siRNA group.
[0059] In some embodiments, the RNAi agent refers to a conjugate having a structure represented
by formula (308) or a pharmaceutically acceptable salt thereof:

wherein,
n1 is an integer selected from 1-3, and n3 is an integer selected from 0-4;
each m1, m2, or m3 is independently an integer selected from 2-10;
R10, R11, R12, R13, R14 or R15 are each independently H, or are selected from the group consisting of the following
groups: C1-C10 alkyl, C1-C10 haloalkyl and C1-C10 alkoxy;
R3 has a structure represented by formula (A59):

formula (A59),
wherein E1 is OH, SH or BH2, and Nu represents the siRNA group;
R2 is a linear alkylene group with a length of 1-20 carbon atoms, wherein one or more
carbon atoms are optionally replaced by any one or more selected from the group consisting
of the following groups: C(O), NH, O, S, CH=N, S(O)2, C2-C10 alkenylene, C2-C10 alkynylene, C5-C10 cyclohydrocabylene, C6-C10 arylene, C3-C18 heterocyclylene and C5-C10 heteroarylene; and wherein R2 may optionally have any one or more substituents from the group consisting of the
following groups: C1-C10 alkyl, C6-C10 aryl, C5-C10 heteroaryl, C1-C10 haloalkyl, -OC1-C10 alkyl, -OC1-C10 alkylphenyl, -C1-C10 alkyl-OH, -OC1-C10 haloalkyl, -SC1-C10 alkyl, -SC1-C10 alkylphenyl, -C1-C10 alkyl-SH, -SC1-C10 haloalkyl, halo substituents, -OH, -SH, -NH2, -C1-C10 alkyl-NH2, -N(C1-C10 alkyl)(C1-C10 alkyl), -NH(C1-C10 alkyl), -N(C1-C10 alkyl)(C1-C10 alkylphenyl), - NH(C1-C10 alkylphenyl), cyano, nitro, -CO2H, -C(O)O(C1-C10 alkyl), -CON(C1-C10 alkyl)(C1-C10 alkyl), - CONH(C1-C10 alkyl), -CONH2, -NHC(O)(C1-C10 alkyl), -NHC(O)(phenyl), -N(C1-C10 alkyl)C(O)(C1-C10 alkyl), -N(C1-C10 alkyl)C(O)(phenyl), -C(O)C1-C10 alkyl, -C(O)C1-C10 alkylphenyl, -C(O)C1-C10 haloalkyl, -OC(O)C1-C10 alkyl, -SO2(C1-C10 alkyl), -SO2(phenyl), -SO2(C1-C10 haloalkyl), -SO2NH2, -SO2NH(C1-C10 alkyl), -SO2NH(phenyl), -NHSO2(C1-C10 alkyl), -NHSO2(phenyl) and -NHSO2(C1-C10 haloalkyl);
each L1 is independently a linear alkylene group with a length of 1-70 carbon atoms, wherein
one or more carbon atoms are optionally replaced by any one or more selected from
the group consisting of the following groups: C(O), NH, O, S, CH=N, S(O)2, C2-C10 alkenylene, C2-C10 alkynylene, C6-C10 arylene, C3-C18 heterocyclylene and C5-C10 heteroarylene; and wherein L1 may optionally have any one or more substituents from the group consisting of the
following groups: C1-C10 alkyl, C6-C10 aryl, C5-C10 heteroaryl, C1-C10 haloalkyl, -OC1-C10 alkyl, -OC1-C10 alkylphenyl, -C1-C10 alkyl-OH, -OC1-C10 haloalkyl, -SC1-C10 alkyl, -SC1-C10 alkylphenyl, -C1-C10 alkyl-SH, -SC1-C10 haloalkyl, halo substituents, -OH, -SH, -NH2, -C1-C10 alkyl-NH2, -N(C1-C10 alkyl)(C1-C10 alkyl), -NH(C1-C10 alkyl), -N(C1-C10 alkyl)(C1-C10 alkylphenyl), - NH(C1-C10 alkylphenyl), cyano, nitro, -CO2H, -C(O)O(C1-C10 alkyl), -CON(C1-C10 alkyl)(C1-C10 alkyl), - CONH(C1-C10 alkyl), -CONH2, -NHC(O)(C1-C10 alkyl), -NHC(O)(phenyl), -N(C1-C10 alkyl)C(O)(C1-C10 alkyl), -N(C1-C10 alkyl)C(O)(phenyl), -C(O)C1-C10 alkyl, -C(O)C1-C10 alkylphenyl, -C(O)C1-C10 haloalkyl, -OC(O)C1-C10 alkyl, -SO2(C1-C10 alkyl), -SO2(phenyl), -SO2(C1-C10 haloalkyl), -SO2NH2, -SO2NH(C1-C10 alkyl), -SO2NH(phenyl), -NHSO2(C1-C10 alkyl), -NHSO2(phenyl) and -NHSO2(C1-C10 haloalkyl);

indicates the site where the group is covalently linked;
M1 represents a targeting group, and its definition and optional range are the same
as above. In some embodiments, each M1 is independently selected from one of the ligands that have an affinity for the asialoglycoprotein
receptor on the surface of mammalian hepatocytes.
[0060] Those skilled in the art will appreciate that although L
1 is defined as a linear alkyl group for convenience, it may not be a linear group
or have a different name, such as amine or alkenyl as a result of the substitutions
and/or replacements described above. For the purposes of the present disclosure, the
length of L
1 is the number of atoms in the chain connecting the two points of attachment. For
such purpose, a ring obtained by substituting a carbon atom of the linear alkylene
group, such as a heterocyclylene or heteroarylene, is counted as one atom.
[0061] When M
1 is a ligand having affinity for asialoglycoprotein receptors on the surface of mammalian
hepatocytes, in some embodiments, n1 may be an integer from 1-3, and n3 may be an
integer from 0-4, such that the number of M
1 ligands in the conjugate is at least 2. In some embodiments, n1+ n3 ≥ 2, so that
the number of M
1 ligands is at least 3, and the M
1 ligands more readily bind to the liver surface asialoglycoprotein receptor, which
in turn facilitates the entry of the conjugate into the cell by endocytosis. Experiments
have shown that when the number of M
1 ligands is greater than 3, the ease of binding of M
1 ligands to asialoglycoprotein receptors on the liver surface does not increase significantly.
Therefore, from the perspective of ease of synthesis, structure/process cost and delivery
efficiency and other aspects into consideration, in some embodiments, n1 is an integer
of 1-2, n3 is an integer of 0-1, and n1 + n3 = 2-3.
[0062] In some embodiments, when m1, m2, and m3 are independently selected from an integer
of 2-10, the spatial positions between multiple M
1 ligands may be suitable for the binding of M
1 ligands to asialoglycoprotein receptors on the liver surface. In order to make the
conjugates provided by the present disclosure simpler, easier to synthesize and/or
reduce costs, in some embodiments, m1, m2 and m3 are each independently an integer
of 2-5, and in some embodiments, m1 = m2 = m3.
[0063] Those skilled in the art will understand that when R
10, R
11, R
12, R
13, R
14 and R
15 are each independently selected from one of H, C
1-C
10 alkyl, C
1-C
10 haloalkyl, and C
1-C
10 alkoxy, the purpose of the present disclosure may be achieved without changing the
properties of the conjugates disclosed herein. In some embodiments, R
10, R
11, R
12, R
13, R
14 and R
15 are each independently selected from H, methyl, and ethyl. In some embodiments, R
10, R
11, R
12, R
13, R
14 and R
15 are all H.
[0064] In some embodiments, R
3 is a group with the structure represented by formula A59, wherein E
1 is OH, SH or BH
2. On the basis of the consideration of the availability of raw materials for preparation,
in some embodiments, E
1 is OH or SH.
[0065] In some embodiments, R
2 is selected to achieve linkage to N and A59 on the nitrogenous backbone. In the context
of the present disclosure, "nitrogenous backbone" refers to a chain structure in which
carbon atoms linked to R
10, R
11, R
12, R
13, R
14 and R
15 are linked to N. Thus, R
2 may be any linking group capable of linking the A59 group to the N of the nitrogenous
backbone in an appropriate manner. In some embodiments, in the case of preparing the
siRNA conjugate by a solid phase synthesis process, the R
2 group needs to contain both the linking site linked to the N on the nitrogenous backbone
and the linking site linked to the P in the R
3. In some embodiments, the site linked to N on the nitrogenous backbone in the R
2 group forms an amide bond with N, and the site linked to P on the R
3 group forms a phosphate bond with P. In some embodiments, the length of R
2 is 3-25 atoms, 3-20 atoms, 4-15 atoms, or 5-12 atoms. In some embodiments, R
2 comprises a first attachment position and an optional second functional group, wherein
the first attachment position is an attachment position for forming a phosphoester
bond or a phosphorothioate ester bond with an oligonucleotide or nucleotide, and the
second functional group is a functional group formed after cleavage of the covalent
linkage with a solid phase support. In some embodiments, R
2 is B5, B6, B5' or B6':

wherein

represents the site where the group is covalently linked.
[0066] The value range of q
2 may be an integer of 1-10, and in some embodiments, q
2 is an integer of 1-5.
[0067] The function of L
1 is to link the M
1 ligand to N on the nitrogenous backbone, providing a targeting function for the siRNA
conjugate. In some embodiments, L
1 is selected from a combination of one or more of the groups in formulas A1-A26. In
some embodiments, L
1 is selected from one of or a combination of two or more of the linkages A1, A4, A5,
A6, A8, A10, A11 and A13. In some embodiments, L
1 is selected from a combination of at least 2 of the linkages A1, A4, A8, A10 and
A11. In some embodiments, L
1 is selected from a combination of at least 2 of the linkages A1, A8, and A10.
[0068] In some embodiments, the length of L
1 may be 3-25 atoms, 3-20 atoms, 4-15 atoms, or 5-12 atoms. In some embodiments, the
length of L
1 is 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24,
25, 30, 35, 40, 45, 50, 55 or 60 atoms.
[0069] In some embodiments, j1 is an integer of 2-10, and in some embodiments, j1 is an
integer of 3-5. In some embodiments, j2 is an integer of 2-10, and in some embodiments,
j2 is an integer of 3-5. R' is C1-C4 alkyl, and in some embodiments, R' is one of
methyl, ethyl and isopropyl. Ra is one of A27, A28, A29, A30 and A31, and in some
embodiments, Ra is A27 or A28. Rb is C1-C5 alkyl, and in some embodiments, Rb is one
of methyl, ethyl, isopropyl and butyl. In some embodiments, each of j1, j2, R', Ra,
and Rb in formulas A1-A26 is selected to achieve the linkage of the M
1 ligand to the N on the nitrogenous backbone, and to make the spatial position between
the M
1 ligands more suitable for the M
1 ligand to bind to the liver surface asialoglycoprotein receptor.
[0070] In some embodiments, the siRNA conjugate has the structure represented by formula
(403), (404), (405), (406), (407), (408), (409), (410), (411), (412), (413), (414),
(415), (416), (417), (418), (419), (420), (421) or (422):

[0071] In some embodiments, P in formula (A59) may be linked to any possible position in
the siRNA group. For example, P in formula (A59) may be linked to any nucleotide in
the sense strand or the antisense strand in the siRNA group. In some embodiments,
P in formula (A59) is linked to any nucleotide of the sense strand. In some embodiments,
P in formula (A59) is linked to the end of the sense or antisense strand. In some
embodiments, P in formula (A59) is linked to the end of the sense strand. The end
refers to the first 4 nucleotides in the sense strand or the antisense strand from
one end thereof. In some embodiments, P in formula (A59) is linked to the end of the
sense or antisense strand in the siRNA group. In some embodiments, P in formula (A59)
is linked to the 3' terminal of the sense strand. In the case of being linked to the
above positions of the sense strand, after the siRNA conjugate enters the cell, upon
unwinding, a separate antisense strand of the siRNA may be released to regulate target
gene expression.
[0072] P in formula (A59) may be linked to any possible position on the nucleotide in the
siRNA group, for example, the 5' position of the nucleotide, the 2' position of the
nucleotide, the 3' position of the nucleotide or the base of the nucleotide. In some
embodiments, P in formula (A59) may be linked to the 2' position, the 3' position
or the 5' position of the nucleotides in the siRNA group by forming a phosphodiester
bond. In some embodiments, P in formula (A59) is linked to the oxygen atom formed
after removal of the hydrogen atom from the 3' hydroxy of the 3' terminal nucleotide
of the sense strand, or P in formula (A59) is linked to the nucleotide by substituting
the hydrogen in 2'-hydroxy of one nucleotide in the sense strand, or P in formula
(A59) is linked to the nucleotide by substituting the hydrogen in 5'-hydroxy of the
nucleotide at 5' terminal of the sense strand.
[0073] In some embodiments, the siRNA group contained in the siRNA conjugate may be formed
by removing one or more atoms from the siRNA molecule described above. The siRNA and/or
siRNA conjugate containing the sequences shown in SEQ ID NOs: 11-24 exhibit low off-target
effects and high HBV mRNA inhibition activity. The siRNA conjugate also shows relatively
high efficiency in entering cells. In some embodiments, the siRNA conjugate has a
structure represented by formula (403) and the siRNA sequences shown in SEQ ID NOs:
11 and 12.
siRNA composition capable of inhibiting HBV mRNA
[0074] The RNAi agent of the present disclosure may also be an siRNA composition capable
of inhibiting HBV mRNA, the siRNA composition comprises the siRNA described above
and a pharmaceutically acceptable carrier.
[0075] In some embodiments, the siRNA composition may be in the form of a liposomal formulation.
In some embodiments, the pharmaceutically acceptable carrier used in the liposomal
formulation comprises an amine-containing transfection compound (hereinafter also
referred to as a critical lipid), a helper lipid and/or a pegylated lipid. The critical
lipid, helper lipid and pegylated lipid may be selected from one or more of the amine-containing
transfection compounds described in Chinese patent application
CN103380113A (which is incorporated herein by reference in its entirety) or pharmaceutically acceptable
salts or derivatives, helper lipids and pegylated lipids thereof.
[0076] In some embodiments, the critical lipid may be a compound represented by formula
(201) as described in Chinese patent application
CN103380113A or a pharmaceutically acceptable salt thereof:

wherein:
X101 and X102 are each independently O, S, N-A or C-A, wherein A is hydrogen or a C1-C20 hydrocarbon chain;
Y101 and Z101 are each independently C=O, C=S, S=O, CH-OH or SO2;
R101, R102, R103, R104, R105, R106 and R107 are each independently hydrogen; a cyclic or acyclic, substituted or unsubstituted,
branched or linear aliphatic group; a cyclic or acyclic, substituted or unsubstituted,
branched or linear heteroaliphatic group; a substituted or unsubstituted, branched
or linear acyl; a substituted or unsubstituted, branched or linear aryl; or a substituted
or unsubstituted, branched or linear heteroaryl;
x is an integer of 1-10;
n is an integer of 1-3, m is an integer of 0-20, p is 0 or 1; wherein if m = p = 0,
R102 is hydrogen; and
if at least one of n or m is 2, R103 and nitrogen in formula (201) form a structure represented by formula (202) or formula
(203):

wherein g, e, and f are each independently an integer of 1-6, "HCC" represents a hydrocarbon
chain, and each *N represents a nitrogen atom in formula (201).
[0077] In some embodiments, R
103 is a polyamine. In other embodiments, R
103 is a ketal. In some embodiments, each of R
101 and R
102 in formula (201) is independently any substituted or unsubstituted, branched or linear
alkyl or alkenyl, the alkyl or alkenyl has 3 to about 20 carbon atoms, for example,
8 to about 18 carbon atoms, and 0 to 4 double bonds, for example, 0 to 2 double bonds.
[0078] In some embodiments, if each of n and m independently has a value of 1 or 3, R
103 may be any of formulas (204)-(213):

wherein in formula (204)-formula (213), g, e and f are each independently an integer
of 1-6, each "HCC" represents a hydrocarbon chain, and each * shows possible attachment
positions of R
103 to the nitrogen atom in formula (201), wherein each H at any * position may be substituted
to achieve linkage to the nitrogen atom in formula (201).
[0079] The compound represented by formula (201) can be obtained by any reasonable method
by those skilled in the art. In some embodiments, the compound represented by formula
(201) may be prepared according to the description in Chinese patent application CN103380113A.
[0080] In some embodiments, the critical lipid is a critical lipid represented by formula
(214) and/or a critical lipid represented by formula (215):
the helper lipid is a cholesterol, a cholesterol analog and/or a cholesterol derivative;
the pegylated lipid is 1,2-dipalmitoyl-sn-glycero-3-phosphatidylethanolamine-N-[methoxy(polyethylene
glycol)]-2000.
[0081] In some embodiments, in the siRNA composition, the molar ratio among the critical
lipid, the helper lipid and the pegylated lipid is (19.7-80) : (19.7-80) : (0.3-50),
such as (50-70) : (20-40) : (3-20).
[0082] In some embodiments, the particles of the siRNA composition formed from the conjugate
provided by the present disclosure and the amine-containing transfection reagent described
above have an average diameter of about 30 nm to about 200 nm, typically about 40
nm to about 135 nm; more typically, the average diameter of the liposome particles
is about 50 nm to about 120 nm, about 50 nm to about 100 nm, about 60 nm to about
90 nm or about 70 nm to about 90 nm. For example, the average diameter of the liposome
particles is about 30, 40, 50, 60, 70, 75, 80, 85, 90, 100, 110, 120, 130, 140, 150
or 160 nm.
[0083] In some embodiments, in the siRNA composition formed from the conjugate provided
by the present disclosure and the amine-containing transfection reagent described
above, the weight ratio (weight/weight ratio) of the conjugate to all lipids (such
as the critical lipids, helper lipids and/or pegylated lipids) is within the range
of from about 1:1 to about 1:50, from about 1:1 to about 1:30, from about 1:3 to about
1:20, from about 1:4 to about 1:18, from about 1:5 to about 1:17, from about 1:5 to
about 1:15, from about 1:5 to about 1:12, from about 1:6 to about 1:12 or from about
1:6 to about 1:10. For example, the weight ratio of the conjugate provided by the
present disclosure to all lipids is about 1:5, 1:6, 1:7, 1:8, 1:9, 1:10, 1:11, 1:12,
1:13, 1:14, 1:15, 1:16, 1:17 or 1:18.
[0084] In some embodiments, each component of the siRNA composition may exist independently
when sold, and may exist in the form of a liquid agent when used. In some embodiments,
the siRNA composition of the present disclosure may be prepared according to various
known methods, and may be prepared by substituting the existing nucleic acid component
with the siRNA described above. In some embodiments, the composition may be prepared
as follows:
the critical lipid, helper lipid and pegylated lipid are suspended in the alcohol
according to the molar ratio as described above and mixed to obtain a lipid solution,
wherein the amount of alcohol is such that the total mass concentration of the obtained
lipid solution is 2-25 mg/mL; for example, it may be 8-18 mg/mL. The alcohol is selected
from pharmaceutically acceptable alcohols, such as alcohols that are liquid at about
room temperature, for example, one or more of ethanol, propylene glycol, benzyl alcohol,
glycerin, polyethylene glycol 200, polyethylene glycol 300, polyethylene glycol 400,
for example, it may be ethanol.
[0085] The siRNA is dissolved in a buffered salt solution to obtain an siRNA aqueous solution.
The concentration of the buffered salt solution is 0.05-0.5 M, for example, 0.1-0.2
M; the pH of the buffered salt solution is adjusted to 4.0-5.5, for example, 5.0-5.2;
the amount of the buffered salt solution makes the concentration of the siRNA do not
exceed 0.6 mg/mL, for example, 0.2-0.4 mg/mL. The buffered salt is selected from one
or more of soluble acetate and soluble citrate, for example, sodium acetate and/or
potassium acetate.
[0086] The lipid solution and the siRNA aqueous solution are mixed, and the mixed product
is incubated at 40-60 °C for at least 2 minutes, for example, 5-30 minutes, to obtain
an incubated liposomal formulation. The volume ratio of the lipid solution to the
conjugate aqueous solution is 1:(2-5), for example, 1:4.
[0087] The incubated liposomal formulation is concentrated or diluted, impurities are removed,
and the agent is sterilized to obtain the siRNA composition provided by the present
disclosure, whose physical and chemical parameters are pH of 6.5-8, encapsulation
efficiency of not less than 80%, particle size of 40-200 nm, polydispersity index
of not higher than 0.30, and osmotic pressure of 250-400 mOsm/kg. For example, the
physical and chemical parameters may be pH of 7.2-7.6, encapsulation efficiency of
not less than 90%, particle size of 60-100 nm, polydispersity index of not higher
than 0.20, and osmotic pressure of 300-400 mOsm/kg.
[0088] The concentration or dilution may be performed before, after or simultaneously with
the removal of impurities. Various existing methods may be used to remove impurities,
for example, a tangential flow system and a hollow fiber column may be used for ultrafiltration
at 100 KDa, wherein the ultrafiltration exchange solution is phosphate buffered saline
(PBS) with pH of 7.4. Various existing methods may be used for the sterilization,
for example, filtration sterilization on a 0.22 µm filter may be used.
[0089] It will be understood by those skilled in the art that in the RNAi agent, the siRNA
and the siRNA conjugate in any suitable ratio can achieve the purpose of the present
disclosure. For example, in some embodiments, the molar ratio of the siRNA to the
siRNA conjugate may be 0:1000-1000:0. In some embodiments, in the RNAi agent, the
molar ratio of the siRNA to the siRNA conjugate is 1:100-100:1, 1:50-50:1, or 1:10-10:1.
In some embodiments, in the RNAi agent, the molar ratio of the siRNA to the siRNA
conjugate is 1:5-5:1. In some embodiments, the RNAi agent is an siRNA conjugate.
siRNA
[0090] In the pharmaceutical composition described in the present disclosure, the RNAi agent
comprises an siRNA composition or an siRNA conjugate. In some embodiments, the siRNA
group in the siRNA or siRNA conjugate in the pharmaceutical composition comprises
a sense strand and an antisense strand, the sense strand comprises a nucleotide sequence
I, and the antisense strand comprises a nucleotide sequence II, wherein the nucleotide
sequence I and the nucleotide sequence II each consist of 19 nucleotides, each of
the nucleotides in the nucleotide sequence I and the nucleotide sequence II is a modified
or unmodified nucleotide, the nucleotide sequence I and the nucleotide sequence II
are at least partially reverse complementary to form a double-stranded region, the
nucleotide sequence II is at least partially reverse complementary to a first nucleotide
sequence segment, and the first nucleotide sequence segment is a nucleotide sequence
of 19 nucleotides in length in HBV mRNA.
[0091] In some embodiments, the nucleotide sequence I has the same length and no more than
three nucleotide differences from the nucleotide sequence shown in SEQ ID NO: 1; and
the nucleotide sequence II has the same length and no more than three nucleotide differences
from the nucleotide sequence shown in SEQ ID NO: 2:
5'-CCUUGAGGCAUACUUCAAZ1-3' (SEQ ID NO: 1);
5'-Z2UUGAAGUAUGCCUCAAGG-3' (SEQ ID NO: 2);
wherein Z1 is A, Z2 is U, the nucleotide sequence I comprises a nucleotide Z3 at a corresponding site to Z1, the nucleotide sequence II comprises a nucleotide Z4 at a corresponding site to Z2, and Z4 is the first nucleotide at the 5' terminal of the antisense strand;
or the nucleotide sequence I has the same length and no more than three nucleotide
differences from the nucleotide sequence shown in SEQ ID NO: 3; and the nucleotide
sequence II has the same length and no more than three nucleotide differences from
the nucleotide sequence shown in SEQ ID NO: 4:
5'-GUGUGCACUUCGCUUCACZ5-3' (SEQ ID NO: 3);
5'-Z6GUGAAGCGAAGUGCACAC-3' (SEQ ID NO: 4);
wherein Z5 is A, Z6 is U, the nucleotide sequence I comprises a nucleotide Z7 at a corresponding site to Z5, the nucleotide sequence II comprises a nucleotide Z8 at a corresponding site to Z6, and Z8 is the first nucleotide at the 5' terminal of the antisense strand;
or the nucleotide sequence I has the same length and no more than three nucleotide
differences from the nucleotide sequence shown in SEQ ID NO: 5; and the nucleotide
sequence II has the same length and no more than three nucleotide differences from
the nucleotide sequence shown in SEQ ID NO: 6:
5'-GGACUUCUCUCAAUUUUCZ9-3' (SEQ ID NO: 5);
5'-Z10GAAAAUUGAGAGAAGUCC-3' (SEQ ID NO: 6);
wherein Z9 is U, Z10 is A, the nucleotide sequence I comprises a nucleotide Z11 at a corresponding site to Z9, the nucleotide sequence II comprises a nucleotide Z12 at a corresponding site to Z10, and Z12 is the first nucleotide at the 5' terminal of the antisense strand;
or the nucleotide sequence I has the same length and no more than three nucleotide
differences from the nucleotide sequence shown in SEQ ID NO: 7; and the nucleotide
sequence II has the same length and no more than three nucleotide differences from
the nucleotide sequence shown in SEQ ID NO: 8:
5'-CUGUAGGCAUAAAUUGGUZ13-3' (SEQ ID NO: 7);
5'-Z14ACCAAUUUAUGCCUACAG-3' (SEQ ID NO: 8);
wherein Z13 is A, Z14 is U, the nucleotide sequence I comprises a nucleotide Z15 at a corresponding site to Z13, the nucleotide sequence II comprises a nucleotide Z16 at a corresponding site to Z14, and Z16 is the first nucleotide at the 5' terminal of the antisense strand;
or the nucleotide sequence I has the same length and no more than three nucleotide
differences from the nucleotide sequence shown in SEQ ID NO: 9; and the nucleotide
sequence II has the same length and no more than three nucleotide differences from
the nucleotide sequence shown in SEQ ID NO: 10:
5'-GUGCACUUCGCUUCACZ17-3' (SEQ ID NO: 9);
5'-Z18ACCAAUUUAUGCCUACAG-3' (SEQ ID NO: 10);
wherein Z17 is A, Z18 is U, the nucleotide sequence I comprises a nucleotide Z19 at a corresponding site to Z17, the nucleotide sequence II comprises a nucleotide Z20 at a corresponding site to Z18, and Z20 is the first nucleotide at the 5' terminal of the antisense strand.
[0092] In some embodiments, the sense strand and the antisense strand are identical or different
in length; the sense strand is 19-23 nucleotides in length, and the antisense strand
is 20-26 nucleotides in length. Thus, the length ratio of the sense strand to the
antisense strand in the siRNA or siRNA group may be 19/19, 19/20, 19/21, 19/22, 19/23,
19/24, 19/25, 19/26, 20/20, 20/21, 20/22, 20/23, 20/24, 20/25, 20/26, 21/20, 21/21,
21/22, 21/23, 21/24, 21/25, 21/26, 22/20, 22/21, 22/22, 22/23, 22/24, 22/25, 22/26,
23/20, 23/21, 23/22, 23/23, 23/24, 23/25 or 23/26. In some embodiments, the sense
strand is 19 nucleotides in length, and the antisense strand is 21 nucleotides in
length. In some embodiments, the sense strand is 21 nucleotides in length, and the
antisense strand is 23 nucleotides in length.
[0093] In some embodiments, the nucleotide sequence I further comprises a nucleotide sequence
III, and the nucleotide sequence II further comprises a nucleotide sequence IV, wherein
the nucleotide sequence III and the nucleotide sequence IV are identically 1-4 nucleotides
in length; the nucleotide sequence III is linked to the 5' terminal of the nucleotide
sequence I, and the nucleotide sequence IV is linked to the 3' terminal of the nucleotide
sequence II. In some embodiments, the base sequence of the nucleotide sequence IV
is reversely complementary to a second nucleotide sequence segment, and the second
nucleotide sequence segment is a nucleotide sequence segment adjacent to the 5' terminal
of the first nucleotide sequence segment in HBV mRNA and having the same length as
the nucleotide sequence IV.
[0094] In some embodiments, the nucleotide sequence III has the same length and is completely
reverse complementary to the nucleotide sequence IV. Therefore, given the base(s)
of the nucleotide sequence III, the base(s) of the nucleotide sequence IV is determined.
[0095] In some embodiments, the sense strand and the antisense strand are different in length,
and the nucleotide sequence II further comprises a nucleotide sequence V. The nucleotide
sequence V is 1 to 3 nucleotides in length and is linked to the 3' terminal of the
antisense strand, constituting the 3' overhang of the antisense strand. Thus, the
length ratio of the sense strand to the antisense strand may be 19/20, 19/21, 19/22,
20/21, 20/22, 20/23, 21/22, 21/23, 21/24, 22/23, 22/24, 22/25, 23/24, 23/25 or 23/26.
In some embodiments, the nucleotide sequence V is 2 nucleotides in length, and thus,
the length ratio of the sense strand to the antisense strand may be 19/21, 21/23 or
23/25.
[0096] Each nucleotide in the nucleotide sequence V may be any nucleotide. For ease of synthesis
and cost saving, in some embodiments, the nucleotide sequence V is 2 consecutive thymine
deoxyribonucleotides (dTdT) or 2 consecutive uracil ribonucleotides (UU); or, to improve
the affinity of the antisense strand for the target mRNA, the nucleotide sequence
V is complementary to a nucleotide at a corresponding site of the target mRNA. Thus,
in some embodiments, the length ratio of the sense strand to the antisense strand
is 19/21 or 21/23. In this case, the siRNA or siRNA conjugate has better mRNA silencing
activity.
[0097] In some embodiments, each nucleotide in the siRNA group in the siRNA or siRNA conjugate
in the pharmaceutical composition is a modified nucleotide. In some embodiments, each
nucleotide in the nucleotide sequence I and the nucleotide sequence II is a fluoro
modified or non-fluoro modified nucleotide; in the direction from 5' terminal to 3'
terminal, in the sense strand, nucleotides at positions 7, 8, and 9 of the nucleotide
sequence I are fluoro modified nucleotides; in the direction from 5' terminal to 3'
terminal, in the antisense strand, nucleotides at positions 2, 14, and 16 of the nucleotide
sequence II are fluoro modified nucleotides; each fluoro modified nucleotide is independently
selected from a nucleotide formed by substituting the hydroxy at the 2' position of
the ribosyl group of a nucleotide with fluoro, and each non-fluoro modified nucleotide
is independently selected from a nucleotide or nucleotide analog formed by substituting
the hydroxy at the 2' position of the ribosyl group of a nucleotide with a non-fluoro
group. In some embodiments, in the direction from 5' terminal to 3' terminal, in the
sense strand, nucleotides at positions 7, 8 and 9, or 5, 7, 8 and 9 of the nucleotide
sequence I are fluoro modified nucleotides; in the direction from 5' terminal to 3'
terminal, in the antisense strand, nucleotides at positions 2, 6, 14 and 16, or 2,
6, 8, 9, 14 and 16 of the nucleotide sequence II are fluoro modified nucleotides;
and the other nucleotides in the sense strand and the antisense strand are non-fluoro
modified nucleotides.
[0098] In the context of the present disclosure, a fluoro modified nucleotide refers to
a nucleotide formed by substituting the hydroxy at the 2' position of the ribosyl
group of a nucleotide with fluoro, which has the structure represented by the following
formula (7). A non-fluoro modified nucleotide refers to a nucleotide or nucleotide
analog formed by substituting the hydroxy at the 2' position of the ribosyl group
of a nucleotide with a non-fluoro group. In some embodiments, each of the non-fluoro
modified nucleotides is independently selected from one of a 2'-alkoxy modified nucleotide,
a 2'-substituted alkoxy modified nucleotide, a 2'-alkyl modified nucleotide, a 2'-substituted
alkyl modified nucleotide, a 2'-amino modified nucleotide, a 2'-substituted amino
modified nucleotide, and a 2'-deoxynucleotide. In some embodiments, the 2'-alkoxy
modified nucleotide is a methoxy modified nucleotide (2'-OMe), represented by formula
(8). In some embodiments, the 2'-substituted alkoxy modified nucleotide may be, for
example, a 2'-O-methoxyethyl modified nucleotide (2'-MOE), represented by formula
(9). In some embodiments, the 2'-amino modified nucleotide (2'-NH
2) is represented by formula (10). In some embodiments, the 2'-deoxynucleotide (DNA)
is represented by formula (11):

[0099] A bridged nucleic acid (BNA) refers to a constrained or inaccessible nucleotide.
The BNA may contain a five-membered, six-membered, or seven-membered ring bridged
structure with a "fixed" C3'-endo sugar puckering. Typically, the bridge is incorporated
at the 2'- and 4'-positions of the ribose to provide a 2',4'-BNA nucleotide. In some
embodiments, the BNA may be an LNA, an ENA, an cET BNA, etc., wherein the LNA is represented
by formula (12), the ENA is represented by formula (13), and the cET BNA is represented
by formula (14):

[0100] An acyclic nucleotide is a type of nucleotide formed by opening the ribose ring of
the nucleotide. In some embodiments, the acyclic nucleotide may be an unlocked nucleic
acid (UNA) or a glycerol nucleic acid (GNA), wherein the UNA is represented by formula
(15), and the GNA is represented by formula (16):

[0101] In formula (15) and formula (16), R is selected from H, OH or alkoxy (O-alkyl).
[0102] An isonucleotide refers to a compound formed by changing the position of the base
in the nucleotide on the ribose ring. In some embodiments, the isonucleotide may be
a compound formed by moving a base from the 1'-position to the 2'-position or 3'-position
of the ribose ring, represented by formula (17) or (18).

[0103] In the compounds of formulas (17)-(18), Base represents a nucleic acid base, such
as A, U, G, C or T; and R is selected from H, OH, F or the non-fluoro group as described
above.
[0104] In some embodiments, the nucleotide analog is selected from one of an isonucleotides,
an LNA, an ENA, a cET, a UNA and a GNA. In some embodiments, each of the non-fluoro
modified nucleotides is a methoxy modified nucleotide. In the text above and below,
the methoxy modified nucleotide refers to a nucleotide formed by substituting the
2'-hydroxy of the ribosyl group with a methoxy group.
[0105] In the text above and below, "fluoro modified nucleotide", "2'-fluoro modified nucleotide",
"nucleotide in which the 2'-hydroxy of the ribosyl group is substituted with fluoro"
and "nucleotide with 2'-fluororibosyl group" have the same meaning, referring to a
compound which is formed by substituting the 2'-hydroxy of the nucleotide with fluoro
and having a structure represented by formula (7); "methoxy modified nucleotide",
"2'-methoxy modified nucleotide", "nucleotide in which the 2'-hydroxy of the ribosyl
group is substituted with methoxy" and "nucleotide with 2'-methoxyribosyl group" have
the same meaning, referring to a compound which is formed by substituting the 2'-hydroxy
of the ribosyl group of the nucleotide with methoxy and having a structure represented
by formula (8).
[0106] In some embodiments, in the pharmaceutical composition, at least 1 phosphate group
in a phosphate-ribose backbone of at least one single strand of the sense strand and
the antisense strand is a phosphate group with a modified group. In some embodiments,
the phosphate group with the modified group is a phosphorothioate group formed by
substituting at least one oxygen atom in a phosphodiester bond in the phosphate group
with a sulfur atom. In some embodiments, the phosphate group with the modified group
is a phosphorothioate group with a structure represented by formula (1):

[0107] In some embodiments, the phosphorothioate group linkage exists in at least one of
the following positions: the position between the first and second nucleotides at
either end of the sense strand or the antisense strand; the position between the second
and third nucleotides at either end of the sense strand or the antisense strand; or
any combination of the above. In some embodiments, the phosphorothioate group linkage
exists in all of the above positions except 5' terminal of the sense strand. In some
embodiments, the phosphorothioate group linkage exists in all of the above positions
except 3' terminal of the sense strand. In some embodiments, the phosphorothioate
group linkage exists in at least one of the following positions:
the position between the first nucleotide and the second nucleotide at 5' terminal
of the sense strand;
the position between the second nucleotide and the third nucleotide at 5' terminal
of the sense strand;
the position between the first nucleotide and the second nucleotide at 3' terminal
of the sense strand;
the position between the second nucleotide and the third nucleotide at 3' terminal
of the sense strand;
the position between the first nucleotide and the second nucleotide at 5' terminal
of the antisense strand;
the position between the second nucleotide and the third nucleotide at 5' terminal
of the antisense strand;
the position between the first nucleotide and the second nucleotide at 3' terminal
of the antisense strand; and
the position between the second nucleotide and the third nucleotide at 3' terminal
of the antisense strand.
[0108] In some embodiments, in the pharmaceutical composition of the present disclosure,
a 5' terminal nucleotide of the antisense strand is a 5'-phosphate nucleotide or a
5'-phosphate analog modified nucleotide. Commonly used 5'-phosphate nucleotides or
5'-phosphate analog modified nucleotides are well known to those skilled in the art.
For example, the 5'-phosphate nucleotides may have the structure represented by formula
(2):

[0109] In another example,
Anastasia Khvorova and Jonathan K. Watts, The chemical evolution of oligonucleotide
therapies of clinical utility. Nature Biotechnology, 2017, 35(3): 238-48 discloses the following four 5'-phosphate analog modified nucleotides:

wherein R is selected from H, OH, methoxy, and fluoro; and Base represents a base
selected from A, U, C, G and T.
[0110] In some embodiments, the 5'-phosphate nucleotide is a nucleotide containing a 5'-phosphate
modification represented by formula (2), and the 5'-phosphate analog modified nucleotide
is a nucleotide containing 5'-(E)-vinylphosphonate (E-VP) modification represented
by formula (3), or phosphorothioate modified nucleotide represented by formula (5).
[0111] In some embodiments, the sense strand in the siRNA is the nucleotide sequence shown
in SEQ ID NO: 11, and the antisense strand is the nucleotide sequence shown in SEQ
ID NO: 12:
5'-CmsCmsUmUmGmAmGfGfCfAmUmAmCmUmUmCmAmAmAm-3'
(SEQ ID NO: 11);
5'-VP-UmsUfsUmGmAmAfGmUmAmUmGmCmCmUfCmAfAmGmGmsUmsUm-3'
(SEQ ID NO: 12);
or the sense strand in the siRNA is the nucleotide sequence shown in SEQ ID NO: 13,
and the antisense strand is the nucleotide sequence shown in SEQ ID NO: 14:
5'-GmsUmsGmUmGfCmAfCfUfUmCmGmCmUmUmCmAmCmAm-3'
(SEQ ID NO: 13);
5'-UmsGfsUmGmAm(Agn)GmCfGfAmAmGmUmGfCmAfCmAmCmsUmsUm-3'
(SEQ ID NO: 14);
or the sense strand in the siRNA is the nucleotide sequence shown in SEQ ID NO: 15,
and the antisense strand is the nucleotide sequence shown in SEQ ID NO: 16:
5'-(invAb)sGmUmGmGmAmCmUmUmCfUfCfUmCmAmAmUmUmUmUmCmUms(invAb)-3'
(SEQ ID NO: 15);
5'-AmsGfsAmsAfAmAfUmUfGmAfGmAfGmAfAmGfUmCfCmAmsCm-3'
(SEQ ID NO: 16);
or the sense strand in the siRNA is the nucleotide sequence shown in SEQ ID NO: 17,
and the antisense strand is the nucleotide sequence shown in SEQ ID NO: 18:
5'-(invAb)sCmGmCmUmGmUmAmGmGfCfAfUmAmAmAmUmUmGmGmUmAms(invAb)-3'
(SEQ ID NO: 17);
5'-UmsAfsCmsCfAmAfUmUfUmAfUmGfCmCfUmAfCmAfGmCmsGm-3'
(SEQ ID NO: 18);
or the sense strand in the siRNA is the nucleotide sequence shown in SEQ ID NO: 19,
and the antisense strand is the nucleotide sequence shown in SEQ ID NO: 20:
5'-GmsUmsGmCmAfCfUfUmCmGmCmUmUmCmAmCmAm-3' (SEQ ID NO: 19);
5'-UmsGfsUmGmAmAmGmCmGmAmAmGmUmGfCmAfCmAmCmsGmsGmUf-3' (SEQ ID NO: 20);
or the sense strand in the siRNA is the nucleotide sequence shown in SEQ ID NO: 21,
and the antisense strand is the nucleotide sequence shown in SEQ ID NO: 22:
5'-GmsUmsGmCmAfCfUfUmCmGmCmUmUmCmAmCmAm-3' (SEQ ID NO: 21);
5'-UmsGfsUmGm(Agn)AmGmCmGmAmAmGmUmGfCmAfCmAmCmsGmsGmUf-3' (SEQ ID NO: 22);
or the sense strand in the siRNA is the nucleotide sequence shown in SEQ ID NO: 23,
and the antisense strand is the nucleotide sequence shown in SEQ ID NO: 24:
5'-GmsUmsGmCmAfCfUfUmCmGmCmUmUmCmAmCmAm-3' (SEQ ID NO: 23);
5'-UmsGfsUmGmAm(Agn)GmCmGmAmAmGmUmGfCmAfCmAmCmsGmsGmUf-3' (SEQ ID NO: 24).
[0112] The uppercase letters C, G, U, and A represent the base composition of nucleotides;
the lowercase letter m indicates that the nucleotide adjacent to the letter m on the
left side is a methoxy modified nucleotide; the lowercase letter f indicates that
the nucleotide adjacent to the letter f on the left side is a fluoro modified nucleotide;
the lowercase letter s indicates that the two nucleotides on the left and right sides
of the letter are linked by a phosphorothioate group; the letter combination VP indicates
that the nucleotide adjacent to the letter combination VP on the right side is a 5'-(E)-vinylphosphonate
(E-VP) modified nucleotide. invAb represents inverted abasic deoxyribonucleotide;
Agn represents adenosine glycerol nucleic acid (GNA).
Immune response regulator
[0113] "Immune response regulator" refers to an agent that can regulate an immune response,
and participates in the regulation of the immune response by promoting or inhibiting
the mechanisms and effects of cellular immunity and humoral immunity. In some embodiments,
the immune response regulator includes, but is not limited to, an adjuvant or an immune
response stimulant. In some embodiments, the adjuvant is selected from one or more
of agents capable of promoting an immune response. In some embodiments, the immunostimulant
is selected from one or more of independently administrable reagents capable of stimulating
an immune response.
[0114] As used herein, the term "adjuvant" or "vaccine adjuvant" is to be understood as
a reagent that promotes (e.g., enhances, accelerates, or prolongs) an immune response
to an antigen with which it is administered to elicit a long-term protective immunity.
There is no substantial immune response against the adjuvant itself. Adjuvants include,
but are not limited to, pathogen components, particulate adjuvants, and combined adjuvants
(see, e.g., www.niaid.nih.gov/research/vaccine-adjuvants-types). Pathogen components
(e.g., monophosphoryl lipid A (MPL), poly(I:C), poly ICLC adjuvant, CpG DNA, c-di-AMP,
c-di-GMP, and c-di-CMP; short and blunt-ended 5'-triphosphate dsRNA (3pRNA) RIG-1
ligand, and emulsion, such as poly[di(carboxyethylphenoxysodium)phosphazene] (PCEP))
can help trigger an early non-specific or innate immune response to a vaccine by targeting
various receptors inside or on the surface of innate immune cells. The innate immune
system affects the acquired immune response, which provides long-term protection against
vaccine-targeted pathogens. Particulate adjuvants (e.g., alum, virosomes, and cytokines,
such as IL-12) form very small particles, which can stimulate the immune system, and
can also enhance delivery of antigens to immune cells. Combined adjuvants, such as
AS02, AS03 and AS04 (all GSK); MF59 (Novartis); (CSL Limited); and (Altimmune), elicit
a variety of protective immune responses. Adjuvants that are moderately effective
when used alone can induce a more potent immune response when used together.
[0115] In some embodiments, the adjuvant used in the present disclosure promotes a humoral
immune response and a cellular immune response. To this end, a balanced Th1/Th2 helper
T cell response is required to support neutralizing antibody responses as well as
effector cell cytotoxic T cell responses. In some embodiments, the adjuvant provides
a balanced Th1/Th2 response. In certain embodiments, the adjuvant is one or more of
poly I:C adjuvant, poly ICLC adjuvant, CpG adjuvant, STING agonist (c-di-AMP adjuvant,
c-di-GMP adjuvant or c-di-CMP adjuvant), ISCOMATRIX
® adjuvant, PCEP adjuvant and Rig-I-ligand adjuvant. In some embodiments, the adjuvant
is poly I:C adjuvant, CpG adjuvant, STING agonist, or PCEP adjuvant. In some embodiments,
the adjuvant is CpG adjuvant.
[0116] As used herein, an "immunostimulant" is a reagent that stimulates an immune response,
which may or may not be administered independently of the antigen. Immunostimulants
include, but are not limited to, pegylated interferon α2a (PEG-IFN-α-2a), interferon
α-2b, PEG-IFN α-2b, interferon λ, recombinant human interleukin 7 and Toll-like receptor
3, 7, 8 or 9 (TLR3, TLR7, TLR8, or TLR9) agonists, viral entry inhibitors (e.g., Myrcludex),
oligonucleotides that inhibit HBsAg secretion or release (e.g., REP 9AC), capsid inhibitors
(e.g., Bay41-4109 and NVR-1221), cccDNA inhibitors (e.g., IHVR-25). In some embodiments,
the immunostimulant may comprise a viral capsid, optionally an empty viral capsid,
e.g., an MVA capsid. In some embodiments, the immunostimulant may also include an
immune checkpoint regulator. The immune checkpoint regulator may be stimulatory or
inhibitory. As used herein, immune checkpoint regulators enhance the immune response.
Immune checkpoint regulators include, but are not limited to, CTLA-4 inhibitors (e.g.,
ipilimumab) and PD-1 inhibitors (e.g., nivolumab, pembrolizumab, and BGB-A317 antibody).
In addition to affimer biotherapeutics, PD-L1 inhibitors include atezolizumab, avelumab,
and durvalumab.
[0117] In some embodiments, the immune response regulator in the pharmaceutical composition
of the present disclosure is selected from one or more of TLR agonists. In some embodiments,
the immune response regulator is selected from one or more of TLR9 agonists. In some
embodiments, the immune response regulator is selected from one or more of CpG DNA
or a pharmaceutically acceptable salt thereof and an alum adjuvant. In some embodiments,
the CpG DNA comprises the nucleotide sequence shown in SEQ ID NO 25 or SEQ ID NO 26:
5'-TCGTCGTTTTGTCGTTTTGTCGTT-3' (SEQ ID NO 25)
5'-TGACTGTGAACGTTCGAGATGA-3' (SEQ ID NO 26);
wherein each nucleotide in the CpG DNA is a deoxynucleotide, and the nucleotides in
the CpG DNA are linked by a phosphorothioate ester bond. In some embodiments, the
CpG DNA is a commercial adjuvant CpG 7909 or CpG 1018.
[0118] In some embodiments, the composition of the present disclosure comprises an RNAi
agent and one or more immune response regulators, or comprises an RNAi agent and one
or more adjuvants, or comprises an RNAi agent and one or more of a particulate adjuvant
and a pathogen component, or comprises an RNAi agent and CpG DNA and/or an alum adjuvant.
In some embodiments, the pharmaceutically active component of the composition of the
present disclosure comprises only an RNAi agent and CpG DNA. In some embodiments,
the pharmaceutically active component of the composition of the present disclosure
comprises an RNAi agent and CpG DNA and/or an alum adjuvant. In some embodiments,
CpG DNA and the alum adjuvant may be administered simultaneously or non-simultaneously.
[0119] In some embodiments, in the composition of the present disclosure, the RNAi agent
is a conjugate having a structure represented by formula (403), a sodium salt thereof,
or a partial sodium salt thereof, wherein Nu represents an siRNA group, the siRNA
group has a sense strand shown in SEQ ID NO: 11 and an antisense strand shown in SEQ
ID NO: 12, and the siRNA group is formed by removing one hydrogen atom from the 3'
hydroxy of the 3' terminal nucleotide of the sense strand; the immune response regulator
is a CpG DNA shown in SEQ ID NO: 25, a sodium salt thereof, or a partial sodium salt
thereof.
[0120] The siRNA, the siRNA conjugate and the immune response regulator described above
can be readily prepared by those skilled in the art through suitable prior art methods,
or are commercially available. For example,
WO2015006740A2 describes preparation methods for various siRNA conjugates in detail. A method for
preparing the structure represented by formula (305) is described in
WO2014025805A1. The preparation method for the structure represented by formula (307) is described
by
Rajeev et al. in ChemBioChem 2015, 16, 903-908. Chinese patent application
CN110959011A also discloses in detail a method for preparing the siRNA conjugate represented by
formula (308). The contents of the documents are incorporated herein in their entirety
by reference. For another example, siRNA and CpG DNA can be obtained by nucleic acid
solid phase synthesis methods well known in the art by linking nucleoside phosphoramidite
monomers one by one in the base order of the siRNA nucleic acid sequence.
[0121] In some embodiments, a pharmaceutically acceptable salt of one or more of the siRNA,
the siRNA conjugate, and the CpG DNA is a water-soluble salt or partial salt. In some
embodiments, the pharmaceutically acceptable salt is an alkali metal salt or a partial
alkali metal salt. In some embodiments, the pharmaceutically acceptable salt is a
sodium salt or partial sodium salt. In some embodiments, the RNAi agent is a sodium
salt of the siRNA conjugate, and the immune response regulator is a sodium salt of
CpG DNA.
[0122] In some embodiments, to facilitate transportation and/or storage, the siRNA and the
siRNA conjugate in the RNAi agent and the immune response regulator are each independently
present in the form of a powder, e.g., in the form of a lyophilized powder for injection.
During administration, the lyophilized powder for injection is mixed with a liquid
excipient to prepare a liquid agent. In some embodiments, for ease of use, the siRNA
and the siRNA conjugate in the RNAi agent and the immune response regulator are present
in various RNAi formulations and immune response regulator formulations commonly used
in the art. For example, the RNAi agent and the immune response regulator formulation
may each independently be a liquid agent, e.g., an injection solution. The liquid
agent may be an injection solution for subcutaneous injection, an injection solution
for intraperitoneal injection, an injection solution for intramuscular injection,
or an injection solution for intravenous injection, or may be a spray administered
to the lungs by spraying or administered to other organs (e.g., the liver) through
the lungs by spraying, or an inhalant inhaled through the oropharynx, or a pharmaceutical
agent administered through the nasal cavity. Therefore, the RNAi agent comprises at
least one of the siRNA and the siRNA conjugate and a pharmaceutically acceptable carrier
and/or adjuvant, and the types and contents of the carriers and/or the adjuvants in
the injection solution for subcutaneous injection, the injection solution for intramuscular
injection, the injection solution for intravenous injection, the spray administered
to the lungs by spraying or administered to other organ tissues (e.g., the liver)
through the lungs by spraying, the inhalant inhaled through the oropharynx, or the
pharmaceutical agent administered through the nasal cavity are well known to those
skilled in the art. In some embodiments, the RNAi agent is an injection solution for
subcutaneous injection.
Auxiliary agent
[0123] The pharmaceutical composition also comprises an auxiliary agent selected from one
or more of a solvent and a pharmaceutically acceptable carrier.
[0124] When the pharmaceutical composition is an injection solution, the auxiliary agent
at least comprises a solvent. The solvent may be, for example, deionized water, water
for injection, ethanol, or a pH buffer solution. The pH buffer solution may be a Tris
hydrochloride buffer with a pH value of 7.5-8.5 and/or a phosphate buffer solution
with a pH value of 5.5-8.5, for example, a phosphate buffer solution with a pH value
of 5.5-8.5.
[0125] The amount of the solvent is adjusted according to the required concentration of
the solution. The concentration of the conjugate in the injection solution may be
0.01 mg/mL to 20 mg/mL, 0.1 mg/mL to 10 mg/mL, or 0.5 mg/mL to 5 mg/mL, based on the
nucleotide sequence group in the conjugate.
[0126] The pharmaceutically acceptable carrier is one or more of various components conventionally
used in the art, such as one or more of a protective agent, an osmotic pressure regulator
and other pharmaceutically acceptable carriers.
[0127] The other pharmaceutically acceptable carrier may be a carrier commonly used in the
field, such as but not limited to magnetic nanoparticles (such as nanoparticles based
on Fe
3O
4 or Fe
2O
3), carbon nanotubes, mesoporous silicon, calcium phosphate nanoparticles, polyethyleneimine
(PEI), polyamidoamine (PAMAM) dendrimer, poly(L-lysine) (PLL), chitosan, 1,2-dioleoyl-3-trimethylammonium-propane
(DOTAP), poly(D&L-lactic/glycolic acid)copolymer (PLGA), poly(2-aminoethyl ethylene
phosphate) (PPEEA) and poly(2-dimethylaminoethyl methacrylate) (PDMAEMA) as well as
derivatives thereof.
[0128] In some embodiments, the pharmaceutically acceptable carrier comprises a physiologically
acceptable compound that functions, for example, to stabilize the pharmaceutical composition
or to increase or decrease the absorption of the conjugate and/or the pharmaceutical
composition. The physiologically acceptable compound is selected from one or more
of the following compounds: carbohydrates, such as glucose, sucrose and/or dextran;
antioxidants, such as ascorbic acid and/or glutathione; low molecular weight proteins;
compositions that reduce the clearance or hydrolysis of any co-administered substance;
excipients; stabilizers and buffer agents. Detergents may also be used to stabilize
the composition or to increase or decrease the absorption of the pharmaceutical composition.
The physiologically acceptable compound may also comprise one or more of a wetting
agent, an emulsifying agent, a dispersing agent, or a preservative that is specifically
used to prevent the growth or action of microorganisms. The physiologically acceptable
compound is known to those skilled in the art and will not be described in the present
disclosure. Those skilled in the art will readily appreciate that the selection of
a pharmaceutically acceptable carrier and a physiologically acceptable compound depends,
for example, on the route of administration and the particular physiochemical properties
of any co-administered substance.
[0129] In some embodiments, the pharmaceutically acceptable carrier is sterile and generally
free of undesirable substances. The pharmaceutical composition provided by the present
disclosure may further comprise a pharmaceutically acceptable auxiliary substance
as needed to approximate physiological conditions, such as pH regulators and buffer
agents, toxicity regulators, etc., e.g., sodium acetate, sodium chloride, potassium
chloride, calcium chloride, sodium lactate, etc. The concentration of the drug conjugate
provided by the present disclosure in the pharmaceutical composition may vary within
a wide range and is selected primarily according to fluid volume, viscosity, body
weight, etc., and a particular mode of administration.
[0130] In some embodiments, in the pharmaceutical composition, there is no special requirement
on the content of the pharmaceutically active ingredient and the pharmaceutically
acceptable carrier. In some embodiments, in the pharmaceutically active ingredient,
based on siRNA in the RNAi agent, the weight ratio of the RNAi agent to the auxiliary
agent may be 1:(1-600), and in some embodiments, the weight ratio described above
is 1:(1-50). In some embodiments, in the pharmaceutically active ingredient, the weight
ratio of the immune response regulator to the auxiliary agent may be 1:(1-5000), and
in some embodiments, the weight ratio described above is 1:(1-500).
[0131] In some embodiments, the carrier may be selected from an osmotic pressure regulator,
which may be sodium chloride and/or potassium chloride. The content of the osmotic
pressure regulator makes the osmotic pressure of the pharmaceutical composition 200-700
milliosmol/kg (mOsm/kg). According to the desired osmotic pressure, those skilled
in the art may easily determine the content of the osmotic pressure regulator. In
some embodiments, the dose of the agent made from the pharmaceutical composition will
be adjusted due to different administration methods during administration.
[0132] In some embodiments, the carrier may be selected from a protective agent. The protective
agent may be at least one of inositol, sorbitol, sucrose, trehalose, mannose, maltose,
lactose and glucose. Based on the total weight of the pharmaceutical composition,
the content of the protective agent may be 0.01-30% by weight.
[0133] In some embodiments, the pharmaceutical composition may be a liquid agent, such as
an injection solution; it may also be a freeze-dried powder injection, which is mixed
with a liquid excipient during administration to prepare a liquid agent. The liquid
agent may be used for, but is not limited to, subcutaneous, intramuscular, or intravenous
injection, and may also be used for, but is not limited to, delivering the pharmaceutical
composition by puncture injection, or by oropharyngeal inhalation, or by nasal administration,
etc. In some embodiments, the pharmaceutical composition is used for subcutaneous,
intramuscular, intravenous, or intrathecal injection administration. In some embodiments,
the RNAi agent is present in a formulation for subcutaneous injection, and the immune
response regulator is present in a formulation for intraperitoneal injection or subcutaneous
injection.
Use and treatment method of the pharmaceutical composition of the present disclosure
[0134] In another aspect, the present disclosure provides use of the pharmaceutical composition
of the present disclosure in preparing a medicament for treating a disease associated
with hepatitis B virus infection. In some embodiments, the disease associated with
hepatitis B virus infection is one or more of inflammation caused by hepatitis B virus
infection, hepatic fibrosis, liver proliferative disease, liver failure, and hepatocellular
carcinoma. In some embodiments, the inflammation caused by hepatitis B virus infection
refers to hepatitis B and/or hepatitis D.
[0135] In yet another aspect, the present disclosure also provides a method for treating
a disease associated with hepatitis B virus infection, comprising administering to
a subject in need an effective amount of the pharmaceutical composition of the present
disclosure. In some embodiments, the method comprises administering to a subject in
need an effective amount of an RNAi agent and an effective amount of an immune response
regulator, wherein the RNAi agent can inhibit HBV-expressed mRNA. In some embodiments,
the disease associated with hepatitis B virus infection is selected from one or more
of the group consisting of the following diseases: hepatitis, liver fibrosis, and
liver proliferative disease.
[0136] The pharmaceutical composition of the present disclosure can significantly reduce
the levels of HBV antigens such as HBsAg and HBeAg, and HBV DNA in a subject. Further,
the pharmaceutical composition of the present disclosure can also induce the production
of HBV antibody in a subject, showing excellent potential for functional cure. In
the context of the present disclosure, when the HBV antigens, the content of DNA and
the content of HBV antibody are calculated using logarithmic coordinates, the unit
of measurement used is log10 (IU/mL or S/CO), which means a logarithmic content value
obtained by performing common logarithmic calculation on the concentration content
(IU/mL or S/CO). For example, the initial content is 5 log
10 (IU/mL) and is reduced to 4 log
10 (IU/mL), and the concentration is reduced by 1 log
10 (IU/mL), which means that the concentration is reduced from 10
5 IU/mL to 10
4 IU/mL, i.e., to 1/10 of the initial concentration.
[0137] In some embodiments, the treatment method of the present disclosure comprises administering
to a subject in need the RNAi agent and the anti-hepatitis B virus antibody in 1 or
more cycles. In some embodiments, the treatment method of the present disclosure comprises
1-4 of the cycles described above. In some embodiments, the cycle is 5-120 weeks in
length. In some embodiments, the cycle is 5-96 weeks in length. In some embodiments,
the cycle is 7 weeks, 50 days, 60 days, 70 days, 80 days, 12 weeks, 20 weeks, 24 weeks,
36 weeks, 48 weeks, or 60 weeks in length. In some embodiments, 1 of the cycles described
above is referred to as 1 complete "treatment course".
[0138] It will be understood by those skilled in the art that after the functional cure
of HBV in a subject is achieved, there is generally no need to continue the treatment.
Thus, in some embodiments, the treatment method of the present disclosure does not
require the completion of the last complete treatment course, and the administration
is stopped when the HBsAg concentration in the serum of the subject is below the lower
limit of detection of the kit, i.e., 0.05 IU/mL. In some embodiments, the administration
may be stopped when the absolute value of HBsAg in the serum of the subject is 100
IU/mL or less.
[0139] In some embodiments, the RNAi agent and the immune response regulator are administered
separately for better efficacy of the prepared drug. In some embodiments, the RNAi
agent is administered to the subject before the immune response regulator is administered.
In some embodiments, the immune response regulator is administered to the subject
before the RNAi agent is administered. In some embodiments, the time interval between
the first administration of the RNAi agent and the first administration of the immune
response regulator is 0 days to one month, e.g., 0 days, 1 day, 2 days, 3 days, 5
days, 1 week, 2 weeks, 3 weeks, or 1 month. In some embodiments, the interval of the
first administrations of the RNAi agent and the immune response regulator is 2 weeks.
[0140] In some embodiments, the method comprises one or more treatment courses, wherein
the RNAi agent and the immune response regulator are each independently administered
one or more times in one course of treatment. In some embodiments, in one treatment
course, an effective amount of the RNAi agent is administered to the subject before
the immune response regulator is administered. In some embodiments, in one treatment
course, after 0.01-27 mg/kg of the RNAi agent is administered to the subject, 0.05-3
mg of the immune response regulator is first administered.
[0141] In some embodiments, within one treatment course, the RNAi agent is administered
once or more times, and the immune response regulator is administered once or more
times. In some embodiments, the RNAi agent is administered 1-5 times, and the immune
response regulator is administered 1-6 times. In some embodiments, to obtain a better
therapeutic effect, the RNAi agent is administered 1-3 times, and the immune response
regulator is administered 2-4 times.
[0142] In some embodiments, to reduce the total dose and frequency of administration, the
interval between the times of each administration of the RNAi agent is 5 days to 60
weeks, 7 days to 60 weeks, or 7 days to 1 year. In some embodiments, in order to obtain
a better therapeutic effect, specifically, in some embodiments, the RNAi agent is
administered at an interval of 7 days, 14 days, 21 days, 1 month, 2 months, 3 months,
half a year, or 1 year between the times of each administration.
[0143] In some embodiments, the interval between the times of each administration of the
immune response regulator is 1 day to 2 months, 2 days to 1 month, 3 days to 1 month,
1 week to 1 month, or 2 weeks to 1 month. Specifically, in some embodiments, the interval
between the times of each administration of the immune response regulator is 3 days,
5 days, 6 days, 1 week, 2 weeks, 3 weeks, or 1 month.
[0144] In some embodiments, in the process of preparing a drug, the RNAi agent and the immune
response regulator are present in a form suitable for administration to a subject
once or more times within 1 treatment course, the length of the treatment course being
25-840 days. In some embodiments, the treatment course is 25-672 days, 25-504 days,
25-420 days, 25-336 days, 25-252 days, 25-168 days, 70-504 days, 70-336 days, and
70-168 days in length.
[0145] In some embodiments, within one of the treatment courses, the RNAi agent is administered
once or more times, and the immune response regulator is administered once or more
times. In some embodiments, the RNAi agent is administered 1-5 times, and the immune
response regulator is administered 2-6 times. In some embodiments, to obtain a better
therapeutic effect, the RNAi agent is administered 1-3 times, and the immune response
regulator is administered 3-4 times.
[0146] In some embodiments, to obtain a more desirable therapeutic effect over time, each
administration of the RNAi agent is performed at an interval of 5 days to 60 weeks,
7 days to 60 weeks, 7 days to 1 year, or 10 days to 40 weeks. In some embodiments,
in order to obtain a better therapeutic effect, specifically, in some embodiments,
the RNAi agent is administered at an interval of 7 days, 14 days, 21 days, 1 month,
2 months, 3 months, half a year, or 1 year between the times of each administration.
[0147] In some embodiments, the interval between the times of each administration of the
immune response regulator is 1 day to 2 months, 2 days to 1 month, 3 days to 1 month,
1 week to 1 month, and 2 weeks to 1 month. Specifically, in some embodiments, the
interval between the times of each administration of the immune response regulator
is 3 days, 5 days, 6 days, 1 week, 2 weeks, 3 weeks, or 1 month.
[0148] In some embodiments, based on the total amount of the siRNA and the siRNA group,
the RNAi agent is administered at a single dose of 0.1 mg/kg-10 mg/kg, 0.2 mg/kg-8
mg/kg, 0.3 mg/kg-9 mg/kg, and 0.5 mg/kg-6 mg/kg body weight of the subject. Specifically,
in some embodiments, the RNAi agent is administered at a single dose of 0.1 mg/kg,
0.2 mg/kg, 0.25 mg/kg, 0.3 mg/kg, 0.4 mg/kg, 0.5 mg/kg, 0.6 mg/kg, 0.8 mg/kg, 1 mg/kg,
2 mg/kg, 3 mg/kg, 4 mg/kg, 6 mg/kg, 8 mg/kg, 9 mg/kg, or 10 mg/kg body weight of the
subject.
[0149] In some embodiments, based on the amount of the immune response regulator, the immune
response regulator is administered at a single dose of 0.03-3 mg. In some embodiments,
the immune response regulator is administered at a single dose of 0.05-2 mg, 0.1-2
mg, or 0.12-1 mg. Specifically, in some embodiments, the immune response regulator
is administered at a single dose of 0.05 mg, 0.075 mg, 0.1 mg, 0.125 mg, 0.15 mg,
0.2 mg, 0.5 mg, or 0.8 mg.
[0150] In some embodiments, both the RNAi agent and the immune response regulator are administered
multiple times. In some embodiments, the interval between each administration of the
RNAi agent is 5 days to 60 weeks, and the interval between each administration of
the immune response regulator is 1 day to 60 days. In some embodiments, the interval
between each administration of the RNAi agent is 10 days to 40 weeks, and the interval
between each administration of the immune response regulator is 5 days to 45 days.
[0151] In some embodiments, the immune response regulator is administered after administration
of an effective amount of the RNAi agent, wherein the RNAi agent and the immune response
regulator are administered at an interval of 5 days to 2 months. In some embodiments,
the RNAi agent and the immune response regulator are administered at an interval of
7-45 days. In some embodiments, 2 weeks after the first administration of the RNAi
agent, the immune response regulator is administered for the first time.
[0152] In some embodiments, in one treatment course, the RNAi agent is administered to the
subject 1-5 times, each time at 0.1-9 mg/kg body weight of the subject, followed by
1-5 times of administration of the immune response regulator, each time at 0.05-1
mg.
[0153] In some embodiments, both the RNAi agent and the immune response regulator are present
in a formulation for subcutaneous injection. In some embodiments, the RNAi agent is
present in a formulation for subcutaneous injection, and the immune response regulator
is present in a formulation for intraperitoneal injection.
[0154] In some embodiments, the administration of the immune response regulator may be an
administration of one or more immune response regulators, or an administration of
one or more adjuvants, or an administration of an aluminum hydroxide adjuvant and/or
CPG DNA. In some embodiments, the single administration of the immune response regulator
is a single administration of CpG DNA. In some embodiments, the single administration
of the immune response regulator is a separate single administration of an alum adjuvant
and CpG DNA. In the case of a separate single administration of an alum adjuvant and
CpG DNA, the dose, interval and number of single administrations of the immune response
regulator are calculated according to the dose, interval and number of administrations
of one of the adjuvants. In some embodiments, the dose, interval, and number of administrations
of the alum adjuvant and CpG DNA may be identical or different.
[0155] In some embodiments, the RNAi agent and the immune response regulator are present
in a form suitable for administration to the subject during a treatment progression,
wherein the treatment progression comprises one or more of the treatment courses,
and the number of treatment courses can be determined according to related indexes
such as hepatitis B surface antigen and HBV DNA. For example, HBsAg can be continuously
reduced to 300 IU/mL or less. In some embodiments, the treatment progression comprises
1-4 of the treatment courses. In some embodiments, it will be understood by those
skilled in the art that after the functional cure of HBV in a subject is achieved,
there is generally no need to continue the treatment. The functional cure of HBV refers
to a state in which the hepatitis B surface antigen (HBsAg) is negative (with or without
the presence of a hepatitis B surface antibody), HBV DNA is undetectable, and liver
function indexes are normal. Thus, in some embodiments, there is no need to complete
the last complete treatment course, and the administration is stopped when the HBsAg
concentration in the serum of the subject is below the lower limit of detection of
the kit, i.e., 0.05 IU/mL. In some embodiments, the administration may be stopped
when the absolute value of HBsAg in the serum of the subject is 100 IU/mL or less.
[0156] The definition and selection scope of the RNAi agent and the immune response regulator
are as described in the previous description of the pharmaceutical composition. In
some embodiments, the RNAi agent is a sodium salt of the siRNA conjugate, the siRNA
group contained in the siRNA conjugate comprises the nucleotide sequences shown in
SEQ ID NOs: 11 and 12, and the immune response regulator is a sodium salt of CpG 7909
comprising the sequence shown in SEQ ID NO: 25.
Kit
[0157] In yet another aspect, the present disclosure also provides a kit comprising the
pharmaceutical composition provided by the present disclosure.
[0158] In some embodiments, the kit described in the present disclosure may provide the
pharmaceutical composition in one container. In some embodiments, the kit described
in the present disclosure may comprise a container providing a pharmaceutically acceptable
excipient. In some embodiments, the kit may further comprise other components, such
as stabilizers or preservatives. In some embodiments, the kit described in the present
disclosure may comprise at least one additional therapeutic agent in a container other
than the container in which the pharmaceutical composition described in the present
disclosure is provided. In some embodiments, the kit may comprise an instruction for
mixing a pharmaceutically active ingredient in the pharmaceutical composition with
a pharmaceutically acceptable carrier and/or adjuvant or other ingredients (if any).
[0159] In the kit of the present disclosure, the pharmaceutical composition, the pharmaceutically
active ingredient in the pharmaceutical composition and/or the pharmaceutically acceptable
adjuvant may be provided in any form, e.g., in a liquid form, a dried form or a lyophilized
form. In some embodiments, the pharmaceutical composition, the pharmaceutically active
ingredient in the pharmaceutical composition, and optionally the pharmaceutically
acceptable adjuvant are substantially pure and/or sterile. In some embodiments, sterile
water may be provided in the kit of the present disclosure.
[0160] The following examples will further illustrate the present disclosure, but the present
disclosure is not limited thereby.
EXAMPLES
[0161] Unless otherwise specified, the reagents and culture media used in the following
examples are all commercially available, and the procedures used such as nucleic acid
electrophoresis and real-time PCR are all performed according to the methods described
in
Molecular Cloning (Cold Spring Harbor Laboratory Press (1989)).
[0162] For the conjugates and CpG DNA synthesized and used in the following examples, unless
otherwise specified, the sodium salts of the conjugate in which the hydroxy hydrogen
ions in all phosphate groups in the conjugate are substituted with sodium ions and
the sodium salts of CpG DNA in which the hydroxy hydrogen ions in all phosphate groups
in CpG DNA are substituted with sodium ions were obtained.
Preparation Example 1. Preparation of pharmaceutical compositions provided by the
present disclosure
(1-1) Preparation of RNAi agent in pharmaceutical compositions of the present disclosure
[0163] According to the preparation method described in Preparation Example 13 of
CN110959011A, conjugate 1 was prepared. The sense strand and the antisense strand contained in
conjugate 1 were the sequences shown in SEQ ID NO: 11 and SEQ ID NO: 12, respectively.
The sense strand and the antisense strand were separately synthesized. Ultrapure water
(Milli-Q ultrapure water instrument, resistivity 18.2 MΩ*cm (25 °C)) was used to dilute
conjugate 1 to a concentration of 0.2 mg/mL (on a basis of siRNA group amount), and
then a liquid chromatography-mass spectrometry instrument (LC-MS, purchased from Waters
Inc., model: LCT Premier) was used for molecular weight determination. The theoretical
molecular weight of the sense strand of conjugate 1 was 8218.83, and the measured
molecular weight was 8218. The theoretical molecular weight of the antisense strand
was 7061.57, and the measured molecular weight was 7061.5. The measured value was
consistent with the called value, indicating that the synthesized conjugate 1 was
the designed double-stranded nucleic acid sequence of interest.
[0164] Conjugate 1 has the structure represented by formula (403), and the siRNA group contained
in conjugate 1 has the sequences shown in SEQ ID NO: 11 and SEQ ID NO: 12:
5'-CmsCmsUmUmGmAmGfGfCfAmUmAmCmUmUmCmAmAmAm-3' (SEQ ID NO: 11);
5'-VPUmsUfsUmGmAmAfGmUmAmUmGmCmCmUfCmAfAmGmGmsUmsUm-3' (SEQ ID NO: 12);
[0165] The uppercase letters C, G, U, and A represent the base composition of nucleotides;
the lowercase letter m indicates that the nucleotide adjacent to the letter m on the
left side is a methoxy modified nucleotide; the lowercase letter f indicates that
the nucleotide adjacent to the letter f on the left side is a fluoro modified nucleotide;
the lowercase letter s indicates that the two nucleotides on the left and right sides
of the letter s are linked by a phosphorothioate group, and VP indicates that one
nucleotide on the right side of the letters VP is a 5'-(E)-vinylphosphonate modified
nucleotide.
(1-1-1) Preparation of component I using conjugate 1: The prepared conjugate 1 was
stored at 2-8 °C in the dark, and conjugate 1 was diluted with a phosphate buffer
solution to obtain a 1.8 mg/mL solution (based on the siRNA group), which was designated
as component I. Component I was administered at a concentration of 1.8 mg/mL according
to a dose of 5 mL/kg body weight of the subject, i.e., a single dose of 9 mg/kg. Based
on a mouse weight of 25 g, each single-dose component I formulation injected into
the mice contained 0.225 mg of conjugate 1 (based on siRNA).
(1-1-2) Preparation of component III using conjugate 1: Another conjugate 1 was diluted
with a phosphate buffer solution to obtain a 0.6 mg/mL solution (based on the siRNA
group), which was designated as component III. Component III was administered at a
concentration of 0.6 mg/mL according to a dose of 5 mL/kg body weight of the subject,
i.e., a single dose of 3 mg/kg. Based on a mouse weight of 25 g, each single-dose
component III formulation injected into the mice contained 0.075 mg of conjugate 1
(based on siRNA).
(1-2) Preparation of immune response regulator in the pharmaceutical composition provided
by the present disclosure
[0166] Nucleoside monomers were linked one by one in the 3'-5' direction in the order in
which nucleotides were arranged according to the sequence shown in SEQ ID NO: 25 by
the solid phase phosphoramidite method.
5'-TCGTCGTTTTGTCGTTTTGTCGTT-3' (SEQ ID NO 25)
[0167] Each nucleotide was a deoxyribonucleotide. The linking of each nucleoside monomer
included a four-step reaction of deprotection, coupling, capping, and sulfurization.
Two nucleotides were linked by phosphorothioate. The synthesis conditions are given
below:
Nucleoside monomers were provided in an acetonitrile solution with a concentration
of 0.1 M. The conditions for the deprotection reaction in each step were the same:
the temperature was 25 °C; the reaction time was 70 s; the deprotection reagent was
a solution (3% v/v) of dichloroacetic acid in dichloromethane; and the molar ratio
of dichloroacetic acid to the 4,4'-dimethoxytrityl protecting group on the solid phase
support was 5:1.
[0168] The conditions for the coupling reaction in each step were the same, which included:
the temperature was 25 °C; the molar ratio of the nucleic acid sequence linked to
the solid phase support to the nucleoside monomer was 1:10; the molar ratio of the
nucleic acid sequence linked to the solid phase support to the coupling reagent was
1:65; the reaction time was 600 s; the coupling reagent was a 0.5 M solution of 5-(ethylthio)-1H-tetrazole
(ETT) in acetonitrile.
[0169] The conditions for the capping reaction in each step were the same, which included:
the temperature was 25 °C, and the reaction time was 15 s. The capping reagent solution
was a mixed solution of CapA and CapB at a molar ratio of 1:1, wherein the CapA and
the CapB were capping reagent solutions. The CapA was a mixed solution of 20 vol%
N-methylimidazole in pyridine/acetonitrile, and the volume ratio of pyridine to acetonitrile
was 3:5. The CapB was a solution of 20 vol% acetic anhydride in acetonitrile. The
molar ratio of the capping reagent to the nucleic acid sequence linked to the solid
phase support was: acetic anhydride:N-methylimidazole:nucleic acid sequence linked
to the solid phase support = 1:1:1.
[0170] The conditions for the sulfurization reaction in each step were the same, which included:
the temperature was 25 °C; the reaction time was 300 s; the sulfurizing reagent was
xanthane hydride. The molar ratio of the sulfurizing reagent to the nucleic acid sequence
linked to the solid phase support in the coupling step was 120:1. The reaction was
carried out in a mixed solvent of acetonitrile:pyridine = 1:1.
[0171] The cleavage and deprotection conditions were as follows: The synthesized nucleotide
sequence linked to a support was added to ammonia water with a concentration of 25
wt% in an ammonia water amount of 0.5 mL/µmol. The mixture was reacted at 55 °C for
16 h. The liquid was removed, and the mixture was concentrated to dryness in vacuum.
[0172] Purification and desalting: The nucleic acid was purified using a preparative ion
chromatography purification column (Source 15Q) through NaCl gradient elution. Specifically,
eluent A: 20 mM sodium phosphate (pH 8.1), and the solvent was water/acetonitrile
= 9:1 (v/v); eluent B: 1.5 M sodium chloride and 20 mM sodium phosphate (pH 8.1),
and the solvent was water/acetonitrile = 9:1 (v/v); elution gradient: eluent A:eluent
B = 100:0-50:50 gradient elution. The product eluates were collected, combined, and
desalted using a reversed-phase chromatography purification column. The specific conditions
included desalting using a Sephadex column (filler: Sephadex-G25), and eluting with
deionized water.
[0173] Detection: The purity was detected by ion exchange chromatography (IEX-HPLC), and
the molecular weight was analyzed by liquid chromatography-mass spectrometry (LC-MS).
The measured value was in conformity with the called value, confirming that what was
obtained was CpG 7909 compound (component II) shown in SEQ ID NO: 25. Stored at 2-8
°C in the dark, each 50 µg of component II was diluted with a phosphate buffer solution
into a 200 µL solution, which was stored separately as 1 part of component II formulation.
(1-3) Preparation of pharmaceutical composition 1 of the present disclosure
[0174] 2 parts of component I and 3 parts of component II were combined to prepare pharmaceutical
composition 1, wherein each part of component I and each part of component II were
stored in different containers. In this case, based on the amount of the siRNA group
and the immune response regulator in the siRNA conjugate, the total weight ratio of
component I to component II in the prepared pharmaceutical composition 1 was 3:1,
and the total dose ratio was 120 mg/kg mouse body weight:1 mg.
(1-4) Preparation of pharmaceutical composition 2 of the present disclosure
[0175] 2 parts of component III and 3 parts of component II were combined to prepare pharmaceutical
composition 2, wherein each part of component III and each part of component II were
stored in different containers. In this case, based on the amount of the siRNA group
and the immune response regulator in the siRNA conjugate, the total weight ratio of
component III to component II in the prepared pharmaceutical composition 2 was 1:1,
and the total dose ratio was 40 mg/kg mouse body weight:1 mg.
(1-5) Preparation of pharmaceutical composition 3 of the present disclosure
[0176] Every 50 µg of alum adjuvant (AH, purchased from Beijing Psaitong Biotechnology Co.,
Ltd., under the catalog No. A10853) was diluted into a 200 µL solution with a phosphate
buffer solution, and stored separately as 1 part of AH formulation.
[0177] 2 parts of component I, 3 parts of component II, and 3 parts of AH formulation were
combined to prepare pharmaceutical composition 4, wherein each part of component I,
each part of component II, and each part of AH formulation were stored in different
containers. In this case, based on the amount of the siRNA group and the immune response
regulator in the siRNA conjugate, the total weight ratio of component I to component
II to AH formulation in the prepared pharmaceutical composition 4 was 3:1:1, and the
total dose ratio was 180 mg/kg mouse body weight:1 mg:1 mg.
Experimental Example 1: Anti-hepatitis B virus effect of pharmaceutical composition
1 of the present disclosure in recombinant adeno-associated virus-hepatitis B virus
(AAV-HBV) transfected mouse model
[0178] The mice used in this experiment were male C57BL/6 mice aged 3-4 weeks with an average
body weight of about 25 g, purchased from Shanghai Lingchang Biotechnology Co., Ltd.,
and transferred from Labcorp experiment 8326405 S529 to enter this experiment. The
production license numbers of this batch of animals are SCXK (Shanghai) 2018-0003,
and the animal health certificate numbers are 20180003016137 and 20180003016138. The
animal use license number of the Labcorp experiment is SYXK (Shanghai) 2021-0001.
[0179] The ARCHITECT i2000 (Abbott Laboratories, Lake Bluff, IL, USA) and auxiliary reagents
thereof used in this experiment were used for detecting serum hepatitis B surface
antigen (HBsAg), hepatitis B e antigen (HBeAg), and hepatitis B surface antibody (HBsAb).
Hepatitis B virus DNA (HBV DNA) detection kit was purchased from Sansure Biotech Co.,
Ltd. (Changsha, Hunan, China), and the PCR instrument (QuantStudio
™ 3) used was purchased from Applied Biosystems (Foster City, CA, USA).
[0180] Conjugate 1 used in this experiment was the sodium salt of conjugate 1 prepared in
step (1-1) of Preparation Example 1. During the experiment, the sodium salt of conjugate
1 was diluted with a phosphate buffer solution to the desired concentration and then
administered by subcutaneous injection. Immune response regulator 1 used in this experiment
was the CpG 7909 sodium salt compound prepared in step (1-2) of Preparation Example
1. During the experiment, the CpG 7909 sodium salt was diluted with a phosphate buffer
solution to the desired concentration and then administered by intraperitoneal injection.
[0181] The pharmaceutical composition used in this experiment was pharmaceutical composition
1 prepared in Preparation Example 1.
[0182] The specific procedures of the experiment are as follows:
Establishment of AAV-HBV mouse model
[0183] [1] To simulate the HBV infection environment, 24 of the above C57BL/6 male mice
were acclimated for 14 days, and then each mouse was injected with 200 µL (1 × 10
11 vg) of AAV-HBV (purchased from BrainVTA (Wuhan) Co., Ltd., model: rAAV8-1.3HBV (ayw))
via the tail vein. The day of injection was recorded as day 1 of the modeling period.
The mice were weighed on day 1, day 22 and day 29 of the modeling period, and serum
samples of the mice were collected on day 22 and day 29 of the modeling period. The
serum volume collected from each mouse was 15 µL. The collected serum was used for
quantitative detection of the hepatitis B virus indexes HBsAg, HBeAg and HBV DNA contents.
Based on the measurement values on day 29, mice with qualified blood virology index
levels after infection were selected for subsequent treatment experiments. The qualified
blood virology index level is a HBsAg level of 4.28 log
10 IU/mL-4.90 log
10 IU/mL, an HBeAg level of 3.73 log
10 S/CO-3.88 log
10 S/CO and an HBV DNA level of 6.98 log
10 IU/mL-8.64 log
10 IU/mL in mouse serum, which are slightly higher than the levels typically observed
in human patients with HBV infection to be suitable for assessing long-term efficacy.
[0184] The selected 24 mice were randomly divided into 4 groups with 6 mice in each group.
During the period from day 1 to the end of the experiment, the health status of the
animals was observed twice a day, and the animals were weighed once or twice a week.
[0185] The specific administration regimen for each group was as follows:
Group 1: blank control group. On day 1 and day 15, the mice were injected subcutaneously
with 0.9% PBS buffer solution at a dose of 5 mL/kg mouse body weight.
Group 2: conjugate control group. On day 1 and day 15, the mice were injected subcutaneously
with a solution of conjugate 1 at a concentration of 1.8 mg/mL at a dose of 5 mL/kg
mouse body weight. The dose was 9 mpk (mg/kg) per mouse for a single administration.
Group 3: immune response regulator control group in which on days 29, 43, and 57,
50 µg of an immune response regulator solution was injected intraperitoneally at a
dose of 200 µL per mouse.
Group 4: pharmaceutical composition 1 group. On day 1 and day 15, the mice were injected
subcutaneously with a solution of component I at a concentration of 1.8 mg/mL at a
dose of 5 mL/kg mouse body weight. The dose was 9 mpk (mg/kg) per mouse for a single
administration. Moreover, on days 29, 43, and 57, the mice were injected intraperitoneally
with a solution of component II at 50 µg at a dose of 200 µL per mouse.
[0186] [2] Blood sample collection and quantitative detection of HBV virus-related indexes
in the administration period:
Whole blood samples were collected from each mouse on day 1 before administration
and on days 8, 15, 22, 29, 36, 43, 57, 64, 71, and 78 to prepare serum for HBV DNA,
HBsAg, HBeAg, and HBsAb assays. The experimental results are shown in FIGs. 1-3.
[0187] FIG. 1 is a line graph showing the levels of HBV DNA in the serum of mice in groups
1-4 during the administration period. The blank control group (group 1) showed almost
no decrease in HBV DNA level. The immune response regulator control group (group 3)
showed only a very small decrease in HBV DNA level, with a maximum decrease value
of no more than 1 log
10 (IU/mL). In another aspect, the conjugate control group (group 2) achieved a maximum
decrease of 2.57 log
10 IU/mL on day 43 after the administration, i.e., the maximum HBV DNA inhibition rate
reached 99.73%.
[0188] The pharmaceutical composition 1 group (group 4) of the present disclosure showed
a significantly high HBV DNA inhibition effect compared to the control groups described
above. The HBV DNA level rapidly further decreased after the administration of component
II and was maintained at a low level for up to 78 days after the first administration.
The pharmaceutical composition 1 group (group 4) achieved the greatest decrease on
day 36, with a decrease of 5.09 log
10 IU/mL in HBV DNA, i.e., the maximum HBV DNA inhibition rate reached 99.9992%. Moreover,
compared with the control group 2, the pharmaceutical composition of the present disclosure
surprisingly further greatly reduced the HBV DNA level by a maximum of 3.01 log
10 IU/mL, that is, compared with the use of the RNAi agent alone, the conjugate group
further greatly reduced the HBV DNA level by 99.9% after the HBV DNA level had been
greatly reduced, and the reduction in the HBV DNA level was far beyond the sum of
the inhibition effects of the siRNA conjugate or the immune response regulator alone.
Further results showed that in 6 experimental animals in group 4, the HBV DNA level
of 1 experimental animal was reduced to the limit of detection (10
3.18 IU/mL) or less on day 78.
[0189] FIG. 2 is a line graph showing changes in the level of HbsAg in the serum of mice
in groups 1-4 over time during the administration period, wherein the blank control
group (group 1) showed almost no decrease in the level of HbsAg. The immune response
regulator control group (group 3) showed only a very small decrease in HBV DNA level,
with a maximum decrease value of no more than 0.3 log
10 (IU/mL). In another aspect, compared with the blank control group, the conjugate
control group (group 2) achieved a maximum decrease of 2.71 log
10 IU/mL on day 43 after the administration, i.e., the maximum HbsAg inhibition rate
reached 99.80%.
[0190] Compared with the control group results described above, similar to the HBV DNA results,
the pharmaceutical composition 1 of the present disclosure also surprisingly showed
a significantly high HbsAg inhibition effect. The HbsAg level was rapidly reduced
after the first administration of component II and was maintained at a relatively
low level throughout the 78-day experimental period. The pharmaceutical composition
1 group showed the greatest reduction on day 64, with a 4.17 log
10 IU/mL reduction in HbsAg, i.e., the maximum HbsAg inhibition rate reached 99.9930%.
Moreover, on day 78 at the end of the experiment, 4.14 log
10 IU/mL HbsAg level was still reduced, i.e., the inhibition rate was still 99.9927%.
Further, compared with the control group group 2, the pharmaceutical composition 1
of the present disclosure could surprisingly further greatly reduce the HbsAg level
by a maximum of 1.65 log
10 IU/mL, that is, compared with the use of the RNAi agent alone, the HbsAg level was
further reduced by 97.76% in the conjugate group after it had been greatly reduced,
and the reduction was far beyond the sum of the inhibition effects of the siRNA conjugate
or the immune response regulator alone. Still further, in 6 experimental animals in
group 4, the HbsAg levels in 2 experimental animals were reduced to the limit of detection
(10
0.18 IU/mL) or less after day 57 until the end of the experiment, and the HbsAg level
in another experimental animal was reduced to the limit of detection on day 78.
[0191] FIG. 3 is a line graph showing changes in the HBeAg level in the serum of mice in
groups 1-4 over time during the administration period. The blank control group (group
1) showed almost no decrease in HBeAg level. The immune response regulator control
group (group 3) showed only a very small decrease in HBeAg level, with a maximum decrease
value of no more than 0.1 log
10 (IU/mL). In another aspect, compared with the blank control group, the conjugate
control group (group 2) achieved a maximum decrease of about 1 log
10 IU/mL on day 43 after the administration, i.e., the maximum HbeAg inhibition rate
reached 90%.
[0192] The pharmaceutical composition 1 group (group 4) of the present disclosure showed
a higher HbeAg inhibition effect compared to the control groups described above, and
the HbeAg level showed a further decrease of about 0.3 log
10 IU/mL after the first administration of component II. It can be seen that the pharmaceutical
composition of the present disclosure could further reduce the HBeAg level compared
to the RNAi agent used alone, and the reduction was greater than the sum of the effects
of the RNAi agent or the immune response regulator used alone.
[0193] In addition, the detection results showed that 3 mice in the pharmaceutical composition
1 group showed a significant increase in the content of HbsAb in serum after the administration,
with the highest increases (mIU/mL) of HbsAb separately being 7.76 × 10
1, 2.98 × 10
2 and 5.72 × 10
2 (mIU/mL).
[0194] Experimental Example 2: Anti-hepatitis B virus effect of pharmaceutical compositions
2-3 of the present disclosure in recombinant adeno-associated virus-hepatitis B virus
(AAV-HBV) transfected mouse model
[0195] The mice used in this experiment were male C57BL/6 mice aged 3-4 weeks with an average
body weight of about 25 g, purchased from Shanghai Lingchang Biotechnology Co., Ltd.
The ARCHITECT i2000 (Abbott Laboratories, Lake Bluff, IL, USA) and auxiliary reagents
thereof used in this experiment were used for detecting serum hepatitis B surface
antigen (HBsAg), hepatitis B e antigen (HBeAg), and hepatitis B surface antibody (HBsAb).
Hepatitis B virus DNA (HBV DNA) detection kit was purchased from Sansure Biotech Co.,
Ltd. (Changsha, Hunan, China), and the PCR instrument (QuantStudio
™ 3) used was purchased from Applied Biosystems (Foster City, CA, USA).
[0196] Conjugate 1 used in this experiment was the sodium salt of conjugate 1 prepared in
step (1-1) of Preparation Example 1. During the experiment, the sodium salt of conjugate
1 was diluted with a phosphate buffer solution to the desired concentration and then
administered by subcutaneous injection. Immune response regulator 1 used in this experiment
was the CpG 7909 sodium salt compound prepared in step (1-2) of Preparation Example
1. During the experiment, the CpG 7909 sodium salt was diluted with a phosphate buffer
solution to the desired concentration and then administered by intraperitoneal injection.
During the experiment, the AH formulation used in this experiment was diluted with
a phosphate buffer solution to the desired concentration and then administered by
intraperitoneal injection.
[0197] The pharmaceutical compositions 2-3 used in this experiment were pharmaceutical compositions
2-3 prepared in Preparation Example 1.
[0198] The specific procedures of the experiment are as follows:
Establishment of AAV-HBV mouse model
[0199] [1] The 42 C57BL/6 male mice described above were modeled according to the procedures
in Experimental Example 1. The 42 mouse models were randomly divided into 7 groups
with 6 mice in each group. During the period from day 1 to the end of the experiment,
the health status of the animals was observed twice a day, and the animals were weighed
once or twice a week.
[0200] The specific administration regimen for each group was as follows:
Group 1: blank control group. On day 1 and day 15, the mice were injected subcutaneously
with 0.9% PBS buffer solution at a dose of 5 mL/kg mouse body weight.
Group 2: conjugate control group. On day 1 and day 15, the mice were injected subcutaneously
with a solution of conjugate 1 at a concentration of 1.8 mg/mL at a dose of 5 mL/kg
mouse body weight. The dose was 9 mpk (mg/kg) per mouse for a single administration.
Group 3: CpG 7909 control group. On days 29, 43, and 57, 50 µg of a CpG 7909 sodium
salt solution was injected intraperitoneally at a dose of 200 µL per mouse.
Group 4: AH formulation control group. On days 29, 43, and 57, 50 µg of an AH formulation
solution was injected intraperitoneally at a dose of 200 µL per mouse.
Group 5: pharmaceutical composition 2 group. On day 1 and day 15, the mice were injected
subcutaneously with a solution of component III at a concentration of 0.6 mg/mL at
a dose of 5 mL/kg mouse body weight. The dose was 3 mpk per mouse for a single administration.
Moreover, on days 29, 43, and 57, the mice were injected intraperitoneally with a
solution of component II at 50 µg at a dose of 200 µL per mouse.
Group 6: pharmaceutical composition 3 group. On day 1 and day 15, the mice were injected
subcutaneously with a solution of component I at a concentration of 1.8 mg/mL at a
dose of 5 mL/kg mouse body weight. The dose was 9 mpk per mouse for a single administration.
Moreover, on days 29, 43, and 57, the mice were injected intraperitoneally with a
solution of component II at 50 µg and a solution of AH formulation at 50 µg at a dose
of 200 µL per mouse.
[0201] [2] Blood sample collection and quantitative detection of HBV virus-related indexes
in the administration period:
For each mouse in groups 1, 2, 3, and 5, whole blood samples were collected 1 day
and 3 days before administration and on days 8, 15, 22, 29, 36, 43, 57, 64, 71, 78,
and 85 to prepare serum for HBV DNA, HBsAg, HBeAg, and HBsAb assays. For each mouse
in groups 4 and 6, whole blood samples were collected 1 day and 3 days before administration
and on days 8, 15, 22, 29, 36, 43, and 57 to prepare serum for HBV DNA, HBsAg, HBeAg,
and HBsAb assays. The experimental results are shown in FIGs. 4-6.
[0202] FIG. 4 is a line graph showing the levels of HBV DNA in the serum of mice in groups
1-6 during the administration period. The blank control group (group 1) and the AH
formulation control group (group 4) showed almost no decrease in HBV DNA level. The
CpG 7909 control group (group 3) showed only a very small decrease in HBV DNA level,
with a maximum decrease value of 1.53 log
10 (IU/mL). In another aspect, the conjugate control group (group 2) achieved a maximum
decrease of 2 log
10 IU/mL on day 22 after the administration, i.e., the maximum HBV DNA inhibition rate
reached 99%.
[0203] The pharmaceutical composition 2 group (group 5) of the present disclosure showed
a significantly high HBV DNA inhibition effect compared to the control groups described
above. On day 1 and day 15, component III was administered to the mice once at a dose
of 3 mpk. On day 29, after the first administration of component II, the HBV DNA level
rapidly decreased and was maintained at a relatively low level for up to 85 days after
the first administration. The pharmaceutical composition 2 group (group 5) showed
the greatest decrease on day 64, with a decrease of 4.48 log
10 IU/mL in HBV DNA, i.e., the maximum HBV DNA inhibition rate reached 99.9967%. Moreover,
compared to the conjugate control group with a single dose of the RNAi agent of 9
mpk, pharmaceutical composition 2 of the present disclosure further greatly reduced
the HBV DNA level by a maximum of 2.76 log
10 IU/mL when the RNAi agent was administered at a single dose of 3 mpk, that is, compared
to the RNAi agent used alone, the HBV DNA level was further reduced by 99.83% in the
conjugate group after the HBV DNA level had been greatly reduced, and compared to
the conjugate control group (group 2), the reduction in the HBV DNA level was far
beyond the sum of the inhibition effects of the siRNA conjugate or the immune response
regulator alone.
[0204] For the pharmaceutical composition 3 group (group 6), component I was administered
to the mice once at a dose of 9 mpk on day 1 and day 15. On day 29, after the first
administration of the AH formulation and component II, the HBV DNA level rapidly decreased
and reached a maximum decrease on day 36, with an HBV DNA decrease of 4.36 log
10 IU/mL, i.e., the maximum HBV DNA inhibition rate reached 99.9956%. Compared with
the conjugate control group, pharmaceutical composition 3 of the present disclosure
further greatly reduced the HBV DNA level, with a maximum reduction of 2.61 log
10 IU/mL, that is, the HBV DNA level was further reduced by 99.75% after the HBV DNA
level of the conjugate group had been greatly reduced compared to the RNAi agent alone.
[0205] FIG. 5 is a line graph showing changes in the level of HbsAg in the serum of mice
in groups 1-6 over time during the administration period, wherein the blank control
group (group 1) and the AH formulation control group (group 4) showed almost no decrease
in the level of HbsAg. The CpG 7909 control group (group 3) showed only a very small
decrease in HBV DNA level, with a maximum decrease value of no more than 0.3 log
10 (IU/mL). In another aspect, compared with the blank control group, the conjugate
control group (group 2) achieved a maximum decrease of 2.24 log
10 IU/mL on day 29 after the administration, i.e., the maximum HbsAg inhibition rate
reached 99.4246%.
[0206] Compared with the control group results described above, similar to the HBV DNA results,
the pharmaceutical composition 2 group (group 5) of the present disclosure also surprisingly
showed a significantly high HbsAg inhibition effect. Component III was administered
to mice once at a dose of 3 mpk on day 1 and day 15. On day 29, the HbsAg level rapidly
decreased after the first administration of component II, and was maintained at a
relatively low level for the experimental period of up to 85 days. The pharmaceutical
composition 2 group (group 5) achieved the greatest decrease on day 64, with a 3.32
log
10 IU/mL decrease in HbsAg, i.e., the maximum HbsAg inhibition rate reached 99.9521%.
Further, compared with the conjugate control group group 2, the pharmaceutical composition
2 of the present disclosure could surprisingly further greatly reduce the HbsAg level
by a maximum of 1.31 log
10 IU/mL, that is, compared with the use of the RNAi agent alone, the HbsAg level was
further reduced by 95.1022% in the conjugate group after it had been greatly reduced.
Moreover, the dose of the siRNA conjugate used was significantly reduced, thereby
further reducing the drug costs and any safety risks associated with the drug dose.
[0207] For the pharmaceutical composition 3 group (group 6), component I was administered
to the mice once at a dose of 9 mpk on day 1 and day 15. On day 29, after the first
administration of the AH formulation and component II, the HBV DNA level rapidly decreased
and reached a maximum decrease on day 36, with an HBV DNA decrease of 2.89 log
10 IU/mL, i.e., the maximum HBV DNA inhibition rate reached 99.87%. Compared with the
conjugate control group, pharmaceutical composition 3 of the present disclosure further
greatly reduced the HBV DNA level, with a maximum reduction of 0.91 log
10 IU/mL, that is, the HBV DNA level was further reduced by 87.69% after the HBV DNA
level of the conjugate group had been greatly reduced compared to the RNAi agent alone.
[0208] FIG. 6 is a line graph showing changes in the HBeAg level in the serum of mice in
groups 1-6 over time during the administration period. The blank control group (group
1), the CpG 7909 control group (group 3), and the AH formulation control group (group
4) showed almost no decrease in HBeAg level. Compared with the blank control group,
the conjugate control group (group 2) achieved a maximum decrease of about 1.04 log
10 IU/mL on day 64 after the administration, i.e., the maximum HbeAg inhibition rate
reached 90.88%.
[0209] Compared with the control groups described above, the pharmaceutical composition
2 group (group 5) of the present disclosure showed a similar HbeAg inhibition effect
to the conjugate control group (group 2). The pharmaceutical composition 3 group (group
6) showed a better HbeAg inhibition effect than that of the conjugate control group.
The HbeAg level was further reduced by about 0.325 log
10 IU/mL compared to the conjugate control group.
[0210] In conclusion, the pharmaceutical composition provided by the present disclosure
can induce the production of HBsAb in mice, indicating that the pharmaceutical composition
can not only effectively inhibit HBV antigens and DNA, but also stimulate the immune
response in mice, showing excellent prospects for achieving a functional cure of hepatitis
B.
[0211] Some embodiments of the present disclosure have been described in detail above, but
the present disclosure is not limited to the specific details of the embodiments.
Within the scope of the technical concept of the present disclosure, various simple
modifications may be made to the technical solutions of the present disclosure. These
simple modifications all belong to the protection scope of the present disclosure.
[0212] It should be noted that the various specific technical features described in some
embodiments above can be combined in any suitable manner where the features do not
contradict each other. In order to avoid unnecessary repetition, such combinations
will not be illustrated separately.
[0213] In addition, various embodiments of the present disclosure may be combined arbitrarily,
as long as they do not violate the idea of the present disclosure, and they should
also be regarded as the content disclosed in the present disclosure.